Jayesh
Cherusseri
a,
Nitin
Choudhary
a,
Kowsik
Sambath Kumar
ab,
Yeonwoong
Jung
abc and
Jayan
Thomas
*abd
aNanoScience Technology Center (NSTC), University of Central Florida, FL 32826, USA. E-mail: Jayan.Thomas@ucf.edu
bMaterials Science and Engineering, University of Central Florida, FL 32816, USA
cDepartment of Electrical and Computer Engineering, University of Central Florida, Orlando, Florida 32816, USA
dCollege of Optics and Photonics, University of Central Florida, Orlando, FL 32816, USA
First published on 5th April 2019
The 21st century demands the rapid development of energy storage devices and systems that can cater to our daily energy needs of wearable devices in particular and electric vehicles in a large context. The advent of nanostructured materials has urged the scientific community and industry to take a renewed interest in developing electrochemical supercapacitors to nurture the energy needs of wearables and electric vehicles. Transition metal dichalcogenides (TMDs) are proposed to play a key role as active electrode materials in supercapacitors enabled by their large surface area and variable oxidation states. These properties enable them to store significant energy via electrical double layer and pseudocapacitive charge storage mechanisms. Herein, we discuss the recent advances in the development and the electrochemical performances of the TMD based supercapacitor electrodes. These electrodes range from those made in different nanoscale form factors to those exhibiting fascinating structural/electronic properties. The synergistic effects between TMDs and other materials in hybrid electrode designs and asymmetric configurations to meet the demand for high energy density requirements of modern electronic devices have been discussed in detail. Finally, the opportunities, as well as the challenges in TMD based supercapacitor research frontiers are highlighted.
Traditionally used activated carbon-based supercapacitor electrodes often employ binders which are passive components that reduce the effective surface area of electro-active materials. This also adds unnecessary weight to the devices, making them cumbersome.16,17 The ground-breaking discovery of the wonder material ‘graphene’ has led to many significant developments in the realms of energy storage due to its large specific surface area, high conductivity, and unprecedented mechanical strength.18,19 Despite a plethora of research conducted on graphene-based supercapacitors, their energy densities are inferior compared to the Li-ion batteries.20–22 This is because of the fact that graphene stores charges only by the formation of an electrochemical double layer (EDL) at the electrode/electrolyte interface. However, redox materials such as transition metal oxides (for e.g. RuO2 and MnO2, etc.) store charge via Faradaic reactions and electronically conductive polymers (e.g. polypyrrole (PPy), polyaniline (PANI), etc.) are added to obtain better electrochemical performance, but at the cost of poor cycle life.23–27
The revolution in the supercapacitor technology is currently motivated by the renewed interest in the post-graphene layered inorganic materials, known as TMDs. The TMDs are layered inorganic materials composed of transition metals (M) and chalcogens (X: S, Se, and Te) in an X–M–X fashion with a chemical configuration of MX2 which offer a rich set of physio-chemical properties that are highly intriguing for fundamental and technological research.28 Various two-dimensional (2D) TMDs used as supercapacitor electrodes nowadays are molybdenum disulphide (MoS2), molybdenum diselenide (MoSe2), tungsten disulphide (WS2), tungsten diselenide (WSe2), tungsten ditelluride (WTe2), tantalum disulphide (TaS2), tantalum diselenide (TaSe2), titanium disulphide (TiS2), niobium disulphide (NbS2), zirconium disulphide (ZrS2), vanadium disulphide (VS2), vanadium diselenide (VSe2), etc. Among these TMDs, the most popular and studied system is MoS2. But a potential alternative to MoS2 is MoSe2, particularly in supercapacitor applications due to the uniqueness of MoSe2 such as lower size, high electrical conductivity than MoS2, etc. Transition metal selenides exhibit higher electrical conductivity than their sulphide counterparts and are promising candidates as electrode materials in various energy storage devices.29 TMDs exist in two phases namely 2H and 1T where the 2H phase is semiconducting, and the 1T phase is metallic.30 TMDs in their bulk state can also be used as electrodes in supercapacitors, but their low surface area is a major drawback. The large surface area of atomically thin individual sheets and also the presence of multiple oxidation states (e.g., +2 to +4 in MoS2) in 2D TMDs enable them to store charge electrostatically (i.e. by EDL mechanism) as well as via ion intercalation into the interlayer space (i.e. through the Faradaic mechanism) leading to high specific capacitance and energy density.31,32 Moreover, the anisotropic crystal structures in 2D TMDs offer edge planes, which are highly reactive for most favorable electrochemical properties.33,34 Despite several interesting features, the poor intrinsic electrical conductivity in the most stable 2D TMD phase (i.e., hexagonal (2H)) hinders their real potential as state-of-the-art supercapacitor electrode materials.35 In addition, the re-stacking of 2D TMD nanosheets inhibiting large surface area exposed to the electrolyte ions and significant volume change during cycling are potential threats to the use of monolithic TMDs.36,37 Nevertheless, the novel sheet-like morphology, large surface area, sub-atomic thicknesses, and active edge sites in 2D TMDs allow them to easily mix, match and deposit on other electrochemically active functional materials to construct hybrid nanomaterials with enhanced physical and chemical properties. The nanoscale engineering of TMDs in zero-dimensional (0D), one-dimensional (1D) and three-dimensional (3D) rational designs is another fascinating approach to alleviate their inherent weaknesses. In addition, a phase change in TMDs from the 2H semiconducting phase to the metallic (1T) phase has triggered the scientific community to develop a new class of metallic TMDs with tremendous potential in achieving higher energy density.
In this review, we summarize the most recent endeavors towards the development of high energy density supercapacitors using TMD based electrodes. This includes (i) the synthesis of TMDs via various routes, (ii) the preparation of pristine TMD based supercapacitors, (iii) hybrid supercapacitor electrodes composed of TMDs with highly conductive and capacitive materials (e.g. carbon nanomaterials or electronically conducting polymers), which surpass the limited specific capacitance, cyclic stability, and rate performance in pristine TMD electrodes, (iv) rational TMD designs in various form factors such as 1D nanowires and 3D porous structures enabling high porosity, large surface areas, and short diffusion paths for better electrochemical performance, (v) metallic TMDs as one of the emerging classes of supercapacitor materials which are expected to set new paradigms in energy storage owing to their unprecedented electrochemical behavior, and (vi) asymmetric supercapacitor devices based on TMDs as anode materials and various organic/inorganic materials as cathodes to achieve high energy densities. A summary of the review is schematically shown in Fig. 1.
Fig. 2 (a) 3D representation of the structure of MoS2 extracted via scotch tape-based micromechanical cleavage, (b) optical image of a single layer of MoS2 (thickness, 6.5 Å) deposited on top of a silicon substrate with a 270 nm-thick SiO2 layer. Reprinted with permission from ref. 93 Copyright (2011) Macmillan Publishers Limited. (c) Schematic diagram of the synthesis route for VS2 by CVD, (d) TEM image of a half-hexagonal VS2 nanosheet, and (e) SEM image of VS2 nanosheets. Reprinted with permission from ref. 57 Copyright (2017) American Chemical Society. |
Lee et al. have prepared large-area MoS2 films on an amorphous SiO2 substrate via the CVD process at a reaction temperature of 650 °C under a nitrogen atmosphere.56 The as-prepared MoS2 films initially exhibited star-shaped morphology and these films further merged to form a single film. The surface pre-treatment of the substrate played a crucial role in determining the morphology of the MoS2 film whereas the untreated substrate could only grow MoS2 nanoparticles instead of the thin film. The CVD growth (Fig. 2c) of VS2 nanosheets on aSiO2/Si substrate was reported recently using precursors such as solid VCl3 and sulfur powder and the obtained nanosheets were of metallic 1T phase with a high electrical conductivity of 3000 S cm−1.57 The growth of the VS2 nanosheets took place at a deposition temperature of 600 °C for a period of 25 min and hexagonal VS2 nanosheets of thickness >100 nm and ultrathin nanosheets with thickness of <10 nm were obtained. The TEM and SEM images of the VS2 nanosheets synthesized are depicted in Fig. 2d and e, respectively. In the CVD process, by changing the concentration and composition of the carrier gas, the size of the VS2 nanosheets can be controlled where the hydrogen gas flow is found mandatory for the growth of the VS2 nanosheets without which no growth was observed on the SiO2/Si substrate. Metallic few-layered 1T VSe2 nanosheets were synthesized by employing the CVD method using vanadium chloride powder and selenium powder as the precursors of V and Se respectively, at a processing temperature of 650 °C.94 Like CVD, CVT is also a feasible method found in the preparation of 2D TiS2 with the possibility of intercalation of various elements.58–61 Semi-metallic 1 Td WTe2 single crystals were synthesized using the CVT method by using iodide (I) as a transporting agent.95 These single crystals had average lengths ranging from 0.5–3 cm with a width of ∼1 mm. Quasi-arrays of 2H-TaSe2 nanobelts were synthesized using the surface-assisted CVT method.96 The vertically grown quasi-arrays had an average height up to 10 μm.
Fig. 3 FESEM images of TiS2 films grown via ALD at 400 °C on (a) rhodium, (b) iridium, (c) palladium, (d) platinum, (e) ruthenium, and (f) TiN. Scale bars: (a–d) 1 μm; (e) 500 nm; (f) 1 μm. Reprinted with permission from ref. 65 copyright (2007) John Wiley and Sons. |
WS2 is another interesting supercapacitor electrode material with a layered structure and high capacitance. However, it suffers from poor conductivity and shorter life. To improve the durability of WS2, hydrothermally grown WS2 nanosheets on carbon fibers were calcined at 300 °C.104 The calcination step improved the crystallinity of the nanosheets developed, as evident from HRTEM and XRD data. Calcined WS2 exhibited a specific capacitance of 211 F g−1 at a current density of 4 mA cm−2 with enhanced cycling stability (85.6% retention after 10000 cycles) compared to uncalcined WS2. WS2 nanoplates well dispersed on carbon fiber cloth (CFC) were synthesized using the solvothermal method by Shang et al.105 The 3D framework of the CFC prevents aggregation of nanoplates and offers a very low charge transfer resistance (Rct) of 0.1 Ω which helps in a faster ion transfer. WS2/CFC delivers a high specific capacitance of 399 F g−1 at a current density of 1 A g−1 retaining 99% capacitance after 500 cycles. Developing the TMDs on such a substrate would also allow us to develop wearable supercapacitors which are in demand for wearable electronics. As one of the key factors for an ideal supercapacitor electrode is a large surface area and high density of active sites, synthesizing these TMDs as quantum dots (QDs) will be a smart approach.106,107 Following this idea, WS2 quantum dots (QD) with a size of ∼2.2 nm were synthesized using the hot injection method to expose more edge atoms for enhanced electrochemical activity.107 Restacking issues associated with WS2 can be resolved by capping them with organic groups using ethanedithiol. The CV measurements done on the QDs showed redox behavior with possible conversion between W6+ and W4+ states of WS2. The specific capacitance of capped QDs showed a high value of 457 F g−1 compared to only 151 F g−1 obtained for uncapped QDs. The capping agent improved the cycle life of the WS2 QDs with increased capacitance at the end of 8000 cycles with no capacitance decay.
High redox activity and multiple valence states make CoS2 a promising electrode candidate for energy storage. Uniform and octahedron-shaped single crystalline CoS2 synthesized via the hydrothermal process offered a specific capacitance of 236.5 F g−1 at a current density of 1 A g−1.108 The CoS2 electrodes had a capacitance loss of 7.4% after 2000 charge–discharge cycles. CoS2 ellipsoids with tube-like cavities were developed via thermal decomposition followed by sulfidation.109 The ellipsoids are formed with an opening on both ends along with rough and porous structures as shown in Fig. 4a and b offering a high surface area for charge storage. The CV measurement on CoS2 ellipsoids showed a typical pseudocapacitive behavior which comes from the Co2+/Co3+ redox couple. The GCD curves were symmetrical showing a good capacitive behavior (Fig. 4c) and the pseudocapacitive charge storage provides a good capacitance of 1040 F g−1 at a current density of 0.5 A g−1.
Fig. 4 (a and b) FESEM images of CoS2 ellipsoids with anisotropic tube-like cavities and (c) GCD curves at various current densities. Reproduced with permission from ref. 109 Copyright (2012) Royal Society of Chemistry. (d) Schematic illustrating the redox reactions occurred on rich-defect VS2 nanoplates. (e) Specific capacitance of VS2 nanoplates at different current densities. Reproduced with permission from ref. 88 Copyright (2012) Royal Society of Chemistry. |
Carnation flower-like SnS2 electrode-based supercapacitors showed excellent electrochemical properties with a specific capacitance of 524.5 F g−1 and a power density of 12.3 W kg−1 at a current density of 0.08 A g−1.86 At a high current density of 0.38 A g−1, the said supercapacitor exhibited a specific capacitance of 215.9 F g−1 with a power density of 61.4 W kg−1. Supercapacitors assembled with 2D TiS2 nanocrystal-based electrodes exhibited a specific capacitance of 320 F g−1.43 TiS2 nanodisc electrode-based supercapacitors provided a specific capacitance of 70 F g−1 when tested in a 6 M KOH electrolyte. Guo et al. prepared ultrathin VS2 nanoplates with in-plane and out-of-plane defects via colloidal chemical synthesis. The presence of so many defects enhances the specific surface area and exposes more active sites for redox reactions to occur (Fig. 4d). They can deliver up to a high capacitance value of 2200 F g−1 as shown in Fig. 4e.88
Selenide based TMDs are electrically more conductive than sulfide-based ones. Molybdenum diselenide (MoSe2) is a TMD similar in structure to MoS2 with Se–Mo–Se stacked atom layers bonded together by van der Waals forces. Their structure is similar to graphene with very high inherent electrical conductivity. This makes them a promising candidate for energy storage.110 Hydrothermally prepared MoSe2 nanosheet electrodes exhibited a specific capacitance of 198.9 F g−1. The symmetric device assembled using these electrodes exhibited a specific capacitance of 49.7 F g−1.83 MoSe2 has a 2D sheet-like structure, and this provides a high surface area along with more active sites for the faster reversible redox reaction. The MoSe2 nanosheet electrode-based supercapacitor showed good capacitance retention of about 75% even after 10000 cycles when cycled at a current density of 5 A g−1. Hierarchical MoSe2 spheres prepared via a simple hydrothermal route were interlaced together making interconnected channels for faster charge transfer.111 This kind of hierarchical structure is essential for attaining faster ion diffusion from the electrolyte to all electrode surfaces. These MoSe2 spheres delivered a capacitance of 243 F g−1 at a current density of 0.5 A g−1 with a rate capability of 60% even at 15 A g−1. Another work involving hydrothermal preparation of the MoSe2 microsphere hierarchical structure composed of 2D nanosheets exhibited a specific capacitance of 272 F g−1 at a current density of 1 A g−1. The MoSe2 nanosheets prepared on the Ni-foam substrate using the hydrothermal method showed excellent electrochemical performance with a specific capacitance of 1114.3 F g−1 and the capacitance retained is about 104.7% after 1500 cycles.82 This high value of capacitance achieved would be because of the sieve-like feature of MoSe2 grown on the Ni foam creating pores for easy access of ions to the entire surface.
Nickel diselenide (NiSe2), another emerging and promising TMD electrode material with multiple oxidation states and tunable electronic configuration has recently been used in supercapacitors.112,113 The first instance of employing NiSe2 as a supercapacitor electrode material is the hydrothermal synthesis of hexapod like NiSe2 made up of nanoparticles with a size of ∼30 nm.114 NiSe2 nanoparticles delivered a maximum specific capacitance of 75 F g−1 at a scan rate of 2 mV s−1 with charges being stored via both EDLC and pseudocapacitance as evident from their quasi-rectangular shaped CV curves. They also possessed excellent cycling stability retaining 94% capacitance even after cycling at 100 mV s−1 for 5000 times. In another work, single crystal NiSe2 cubes were synthesized using a solvothermal method.115 Structural characterizations showed that NiSe2 was formed as truncated cubes with smooth surfaces and an edge length of 100 to 400 nm. The polyhedral structure enhances the electrochemical performance by providing abundant active sites for charge storage and also helping in easy access of electrolyte ions. CV studies showed a pseudocapacitive nature of NiSe2 crystals and GCD curves exhibited symmetric behavior indicating good chemical reversibility. The NiSe2 electrode exhibited a good specific capacitance of 1044 F g−1 at a current density of 2 A g−1 with ∼60% rate capability even at a higher current density of 30 A g−1. Though the NiSe2 crystals showed a promising capacitance value, they suffered from stability as they lost 33% of the initial capacitance after 2000 cycles because of the change in their morphology from cubes to agglomerated particles. This change in morphology can be controlled by forming a composite with carbon-based materials which can effectively improve the capacitance and also enhance the cycle life. An interesting approach of developing NiSe2 as a flexible electrode was accomplished by Bao et al.116 NiSe2 nanosheet arrays were deposited electrochemically on a 3D carbon fiber cloth, and these nanosheets were well connected offering a continuous charge transfer. The NiSe2 electrode with a mass loading of 1.1 mg delivered a maximum capacitance of 1058.5 F g−1 at a current density of 2 A g−1 with a rate capability of ∼94% at 10 A g−1. This remarkable rate capability was due to the low internal and charge transfer resistance of 1.5 Ω and 2.2 Ω respectively.
Nanostructured carbonaceous materials are the most promising electrode candidates in supercapacitors due to their unique features such as high electrical conductivity, large surface area, good chemical and electrochemical stability, environment-friendliness, etc.130–132 Hence, they are widely used as conductive additives providing large-surface area for the preparation of composite electrodes.133–137 Therefore, carbon nanomaterials are suitable candidates to increase the electrical conductivity as well as the electrochemical performance while using them to prepare hybrid electrodes with 2D TMDs.138–142
Undoubtedly, MoS2 is the most widely studied TMD for supercapacitors, but other TMDs based on different transition metals and other chalcogens are gaining significant attention. For example, WS2 shows even higher intrinsic conductivity compared with MoS2. To increase the active surface area and the density of the edge sites of MoS2, several hydrothermal procedures have been adopted to synthesize different nanostructures of MoS2 and utilize them as electrode materials in supercapacitors. To fully magnify this edge, 2D MoS2 is often synthesized with amorphous carbon, conductive polymers, and metal oxide decoration to do the surface-treatment. Their geometrical likeliness to the graphene structure suggests possible performance enhancements by forming stable composites with graphene. TMDs as semiconductors could then benefit from the excellent electronic conductivity of carbon nanomaterials such as carbon nanotubes (CNTs) and graphene.120,143–146 For example, MoS2/multi-walled CNT (MWNT) composites fabricated using a facile hydrothermal method resulted in flowerlike MoS2 nanosheets wrapping around MWNTs to form a 3D nanoarchitecture.147 These electrodes exhibited a high specific capacitance of 452.7 F g−1 and maintained ∼95% of the initial capacitance after 1000 cycles.
Recently, a facile and cost-effective successive ionic layer adsorption and reaction method has been reported to synthesize a hierarchical core/shell nanostructure. In this structure, the VS2 nanoparticles were decorated onto the MWNT matrix core.148 These electrodes demonstrate a very high capacitance of 830 F g−1 and excellent cycle life with 95.9% capacitance retention after 10000 cycles. The extraordinary performance of these electrodes is attributed to the modified surface architecture of MWCNTs using VS2 which not only promotes a fast Faradic charge transfer but also establishes a highly conductive VS2/MWCNT interface. The remarkable performance in these composites is attributed to the 3D design with a conductive network which promotes fast and efficient charge transport and prevents the volume expansion during charging and discharging cycles. However, in several instances, 2D TMDs have been found to easily detach from the CNT scaffold network during the fast charge/discharge process, resulting in poor cycling stability.149,150 In this regard, reduced graphene oxide (rGO) has been considered as a better carbon host because of its 2D structural similarity with TMDs providing better stability due to intimate 2D/2D atomic hetero-interfaces. In addition, rGO offers a large surface area, excellent electronic conductivity, and porosity for better electrochemical performance in TMD/RGO composites.76,151,152 A binder-free 3D flexible supercapacitor electrode was constructed by coating a few layers of rGO nanosheets via vacuum filtration onto a hydrothermally grown MoS2@CNT composite network template (Fig. 5a).143Fig. 5b shows the representative SEM image of the MoS2@CNT/rGO hybrid showing a uniform distribution of MoS2 nanoflowers onto CNTs. This hybrid electrode yields a high areal capacitance of 129 mF cm−2 at a current density of 0.1 mA cm−2. The cyclic voltammetry (CV) as shown in Fig. 5c indicates a significant enhancement in the capacitive performance of the MoS2@CNT/rGO hybrid as compared to pristine CNT, MoS2@CNT or MoS2/rGO electrodes. The observed electrochemical behavior of the MoS2@CNT/rGO electrodes is mainly attributed to the interconnected 3D porous network structure and high toughness/stability induced by the rGO conductive coating. Moreover, this electrode endures 10000 charge/discharge cycles with 97.7% capacitance retention. In another report, highly capacitive WS2 nanosheets were combined with highly conducting RGO by using a molten salt method to construct paper electrodes.153 The perfect 2D/2D hybrid nanostructure represents the high synergy of the large Faradaic charge storage in WS2 active sites and fast charge transferability in rGO nanosheets, accomplishing a high specific capacitance of 2508.07 F g−1 at a scan rate of 1 mV s−1. Moreover, this hybrid electrode provided an excellent cyclic stability of 98.6% capacitance after 5000 cycles without any loss in the coulombic efficiency.
Fig. 5 (a) Schematic showing the synthesis steps for MoS2@CNT/rGO electrodes, (b) SEM images of the as-synthesized 3D MoS2@CNT/rGO hybrid, and (c) CV results comparing the electrochemical performance of CNT, MoS2/rGO, MoS2@CNT, and MoS2@CNT/rGO electrodes. Reprinted with permission from ref. 143 Copyright (2017) John Wiley and Sons. (d) SEM and (e) TEM images of the MoS2–NiO hybrid, (f) specific capacitance comparison of MoS2–NiO with pure NiO and MoS2 at various current densities and (g) cyclic stability of MoS2–NiO with pristine NiO at 2 A g−1. Reprinted with permission from ref. 154 Copyright (2017) the Royal Society of Chemistry. |
Transition metal oxides (MOs) and hydroxides are other promising additives which substantially enhance the capacitive performance of TMDs via the Faradaic charge storage mechanism in which fast and reversible redox reactions occur in the electrodes.154 Ni, Co, and Fe-based oxides have been preferred as emerging supercapacitor electrode materials replacing traditional SnO2 and RuO2 due to their fast-redox kinetics, environment friendliness, and cost-effectiveness.155–157 For example, 2D MoS2 nanosheets were recently integrated with various porous MOs such as NiO, Co3O4, and Fe2O3 to form hybrids using a simple, scalable solvent-exchange method.158–161Fig. 5d and e show the SEM and TEM images of the as-prepared MoS2–NiO hybrids clearly showing uniform confinement of the NiO nanosheets on MoS2 nanosheets. The MoS2–NiO electrode exhibits good electrochemical performance due to its Faradaic charge storage with a specific capacitance of 1080 F g−1 (Fig. 5f) and good cycle life of >100% capacitance retention after 9000 cycles at a current density of 2 A g−1 (Fig. 5g).158
Another TMD of great interest due to its low cost, high chemical stability, and environmental friendliness is tin disulfide (SnS2). When SnS2 is made into a composite with SnO2, the energy storage is enhanced by better electrochemical properties. A SnS2–SnO2 nanostructure obtained using the solvothermal method achieved a capacitance of 149 F g−1 at a current density of 2 A g−1, which was higher than pristine SnS2.162 Fang et al. synthesized a novel cauliflower like ZnO/VS2 nanocomposite via a wet chemical method for a supercapacitor electrode.163 The ZnO which was formed in situ as nanospheres on the VS2 nanosheets effectively prevented the restacking. This helped in achieving a very high specific capacitance of 2695.7 F g−1 at a current density of 1 A g−1. This nanocomposite had a 3D structure which accommodates the volume change during the cycling due to which good cycle stability of 92.6% retention was achieved after 5000 cycles.
Electronically conductive polymers are pseudocapacitive materials with good electronic conductivity and large surface area that provide short diffusion paths for ions/electrons when mixed with TMD layers.164–167 2D TMDs, in turn, offer high mechanical stability to electronically conducting polymers and significantly mitigate the poor cycle life endurance inherent in the pristine electronically conducting polymer-based supercapacitor electrodes. In situ polymerization of electronically conducting polymers with 2D TMDs has commonly been pursued to develop these hybrids.168,169 For example, 2D MoS2/PPy hybrids prepared using this method showed a very high capacitance of ∼700 F g−1 at 10 mV s−1, which is unprecedented in any of the previously reported supercapacitors using pristine PPy electrodes.170 In addition, these hybrids yield a very high energy density of 83.3 W h kg−1. Moreover, the MoS2/PPy nanocomposite electrode maintains 85% of its initial capacitance whereas the pristine PPy electrode decays to 50% after 4000 continuous charge/discharge cycles. In another study,171 2D MoS2/PANI nanoneedle arrays presented remarkable cycling stability showing 91% of the initial capacitance after 4000 cycles, while delivering a high energy density of 106 W h kg−1 and a capacitance of 669 F g−1 at 1 A g−1. The excellent electrochemical performance in this hybrid is attributed to the MoS2/PANI architecture in which atomically thin sheets of MoS2 act as a charge reservoir allowing the access of significant electrolyte ions into its 2D layers, while the PANI nanoneedle architecture facilitates the electron transport and accommodates the strain in MoS2 caused by the insertion/extraction of electrolyte ions. This results in high capacitance, rate capability, and stability.
A direct deposition of 3D porous MoS2 films on the flexible Cu foil and polyimide substrates using the sputtering technique has recently provided a novel electrode architecture possessing a large surface area and high density of active edge sites.172 It exhibits an excellent capacitance of 330 F cm−3 and retained over 97% capacitance after 5000 cycles. The high capacitance and stability in this electrode are attributed to the 3D open pore structure and good adhesion and contact of MoS2 with the current collector. Rational carbon materials and polymer architectures act as excellent backbone structures for the growth of novel TMD designs while providing highly conductive networks/pathways. For example, aligned CNTs used as templates enabled the growth of few-layered MoS2 uniformly wrapped around them.150 The hybrid design leverages the high electrical conductivity in CNTs and high energy storage capacity in MoS2 to exhibit an overall specific capacitance of 135 F cm−3. Moreover, the CNT/MoS2 hybrid sheet-based supercapacitor electrodes were twisted in the form of a fiber which retained 95% capacitance even after 1000 bending cycles, which is an indication of high mechanical stability and strong interaction between the constituent materials of the hybrid. Flower-like MoS2 nanostructures fabricated on the 3D graphene skeleton exhibited a high capacitance of 410 F g−1 and excellent cycling stability, i.e. 80.3% capacitance retention after 10000 continuous cycles.173
Singh et al. reported the synthesis of graphene/MoS2 nanoflower hybrids used as electrodes in supercapacitors.174 The solid-state supercapacitor assembled using the graphene/MoS2 nanoflower hybrids achieved a specific capacitance of 58 F g−1 with an energy density of 24.59 W h kg−1 and a power density of 8.8 W kg−1. A rational 3D tubular MoS2/PANI hybrid electrode in which hydrothermally prepared 3D MoS2 suspensions were uniformly covered by PANI nanowire arrays via in situ oxidative polymerization not only showed a high specific capacitance of 552 F g−1 but also exhibited an improved rate capacitance of 82% at 30 A g−1 and a capacitance retention of 88% after 1000 cycles.175 The excellent capacitive performance and stability in these nanostructures are mainly attributed to the novel 3D construction of tubular electrodes which provides better insertion/extraction pathways to the electrolyte ions as well as accommodates the expansion/contraction of the PANI nanowire during the charge–discharge process. It has been observed that novel supercapacitor electrode architectures made of amorphous TMDs show unexpectedly high capacitive performances as compared to crystalline TMDs as they are capable of accommodating high volume change along with exhibiting better redox activity.176 A core/shell nanosphere architecture fabricated using a highly conductive Ni3S4 core and an amorphous MoS2 shell via one-pot synthesis demonstrated an impressive specific capacitance of 1440.9 F g−1 at 2 A g−1 and retained 90.7% capacitance after 3000 cycles at a scan rate of 10 A g−1.177 In a recent report,178 a high areal capacitance of 83.9 mF cm−2 was achieved in 3D electrodes made of amorphous MoSx thin films coated on carbon nanofiber papers using the facile hydrothermal method.
Core–shell nanostructures with a highly conducting core and large surface area/porous shells are intriguing for high-performance supercapacitors as they offer fast conduction of charge carriers, high mechanical stability during volume expansion, and enhanced electrode/electrolyte interfaces. Choudhary et al. reported a novel strategy of sequential oxidation/sulfurization in which a highly conducting tungsten foil was chemically converted to a tungsten trioxide (WO3) nanorod core with few-layered WS2 shells forming chemically self-assembled core/shell nanowire structures.179Fig. 6a represents the schematic of a one-body array of a h-WO3/WS2 core/shell nanowire supercapacitor. A digital image of the WO3/WS2 core/shell nanowire on a tungsten foil under bending conditions (Fig. 6b) shows its high flexibility. The SEM images of the nanowires (Fig. 6c) reveal a high density of nanowires with atomically sharp interfaces. The near rectangular nature of the CV curves (Fig. 6d) with a large area under the curve and symmetric GCD curves (Fig. 6e) of the solid-state supercapacitor show its excellent charge storage capability. The high mechanical stability in these core/shell nanowire electrodes leads to unprecedented cycling stability with zero loss of capacitance even after 30000 cycles. Moreover, these electrodes could be bent at different bending angles without any significant change in their electrochemical performance (Fig. 6f), suggesting their ability to be used in flexible devices. Another interesting approach uses a highly conducting carbon/nickel template to grow a hierarchically double core/shell architecture of C@Ni3S2@MoS2 nanorods.180 The C@Ni3S2@MoS2 supercapacitor electrodes show a specific capacitance of 1544 F g−1 at a current density of 2 A g−1 and a capacitance retention of 92.8% after 2000 cycles at a high current density of 20 A g−1.
Fig. 6 (a) Schematic of one-body array of h-WO3/WS2 core/shell nanowire supercapacitors, (b) digital image of h-WO3/WS2 core/shell nanowires on tungsten foil under bending conditions, and (c) SEM image of well-aligned core/shell nanowires (the inset shows the SEM image of nanowires with their faceted surface, scale bar: 500 nm); (d) CV curves at different scan rates, (e) GCD curves at different current densities, and (f) CV curves at different bending angles of the solid-state core/shell supercapacitor prepared with the Na2SO4 gel electrolyte. Reprinted with permission from ref. 179 Copyright (2016) American Chemical Society. |
The Chhowalla group reported 107 higher electronic conductivity in 1T MoS2 phases compared with their 2H semiconducting counterparts.91 They prepared binder free 1T MoS2 film electrodes by chemical exfoliation of MoS2 nanosheets via lithium intercalation and tested their electrochemical performance in various aqueous and organic electrolytes. Fig. 7a shows the CV curves of the 1T phase of the MoS2 nanosheet paper in different electrolyte solutions at a scan rate of 20 mV s−1. The GCD curves (Fig. 7b) show good rate capability and exhibit high volumetric capacitances (Fig. 7c) in sulfate-ion based electrolyte solutions. The cycle life of 1T MoS2 nanosheet electrodes also showed a long cycle life with nearly 100% capacitance retention (Fig. 7d). The stacked 1T MoS2 nanosheet electrodes could electrochemically intercalate a wide range of electrolyte ions such as H+, Li+, Na+, and K+ and a schematic representing the same is depicted in Fig. 7e. When used in organic media, the 1T MoS2 electrode shows a high operation voltage of 3.5 V with a high coulombic efficiency of 95% over 5000 cycles. The unprecedented electrochemical performance exhibited by 1T MoS2 is attributed to its high hydrophilicity and superior electrical conductivity. Despite superior electrochemical performance shown by 1T-MoS2, the use of hazardous Li metal and the presence of the impurity phase during synthesis as well as the reversibility of the 1T to 2H phase cannot be denied. In this regard, a simple and safe hydrothermal method has been employed to produce few-layered metallic MoS2 nanosheets using water as a solvent.98 The as-prepared MoS2 electrodes demonstrate a high specific capacitance of 380 F g−1 at 5 mV s−1. Interestingly, the symmetric supercapacitor based on these electrodes yields a high energy and a power density of 51 W h kg−1 and 1000 W kg−1, respectively. Using a similar synthesis method, metallic 1T WS2 nanoribbon electrodes have been shown to exhibit 12 times higher capacitance (2813 mF cm−2) compared to semiconducting 2H-phase WS2.99 Metallic ultrathin VS2 nanosheet based electrodes are found to be potential candidates for in-plane supercapacitor devices and a high area specific capacitance of 4760 μF cm−2 was obtained without any degradation even after 1000 charge–discharge cycles.47
Fig. 7 (a) CV curves of 1T phase MoS2 nanosheet paper in different electrolyte solutions at 20 mV s−1, (b) GCD curves at different current densities in K2SO4, (c) volumetric capacitance of 1T MoS2 as a function of scan rate in different electrolytes, (d) cycling stability in various electrolytes, and (e) schematics showing the intercalated and non-intercalated 1T MoS2 restacked nanosheets. Reprinted with permission from ref. 91 Copyright (2015) Macmillan Publishers Limited. |
Motivated by the excellent electrochemical performance in metallic 2D TMDs, several studies have been carried out by making them as a composite with other capacitive materials.92,185,186 A coin cell supercapacitor constructed from a 1T-MoS2 and graphene composite structure achieved a volumetric capacitance of 560 F cm−3 in an aqueous electrolyte and a capacitance retention of about 90% after 5000 cycles.92 Supercapacitor electrodes composed of mixed 2D TMD phases such as electrically conducting 1T with a highly stable 2H phase are expected to show interesting electrochemical properties due to combined effects of a large surface area as well as high electron/ion transport, which are the two pre-requisites for any high-performance supercapacitor electrode. Jiang et al. reported about 100 times enhancement in capacitance of MoS2 based supercapacitors fabricated by optimizing in-plane 1T–2H phase hybridization of the monolayers.97 In another report,185 mixed phase MoS2 nanosheets were assembled with rGO to make a hybrid aerogel electrode with a specific capacitance of 416 F g−1 at 1 A g−1. Moreover, these electrodes in a planar symmetric supercapacitor configuration showed no loss in capacitance up to 50000 cycles.
VS2 is another promising supercapacitor electrode candidate due to its metallic nature and easy exfoliation of its 2D layers stacked up via weak van der Waals forces. Feng et al. assembled the VS2 nanosheets to fabricate in-plane supercapacitors which exhibited a specific capacitance of 4760 μF cm−2 with no loss in capacitance after 1000 charge/discharge cycles.187 The VS2 nanosheets have also manifested impressive performance as supercapacitor electrodes for energy-related applications. The high capacitive performance in the VS2 nanostructures is believed to have originated from their ultrahigh quantum capacitance. Supercapacitors assembled with 1T VS2 nanosheets exhibited a maximum specific capacitance of 860 F g−1 and the supercapacitors utilizing different electrolytes such as H2SO4, Li2SO4, Na2SO4 and K2SO4 showed superior cycling stabilities when tested for 1000 cycles.57 Thus, the high electrical conductivity with a significant electrochemical intercalation process (as shown schematically in Fig. 8a) leads to high Faradaic charge storage in VS2. Highly crystalline VS2 nanosheets of thickness below 10 nm with domain sizes of tens of micrometers were prepared using the CVD method.57 These nanoflakes were dispersed on glassy carbon substrates to test their electrochemical performance in 0.5 M sulfate electrolyte solutions. Moreover, the VS2/glassy carbon electrodes exhibited a high rate performance by retaining 200 F g−1 of initial capacitance even at a high scan rate of 200 mV s−1 as shown in Fig. 8b. A specific capacitance as high as 860 F g−1 was recorded at a scan rate of 5 mV s−1 (Fig. 8c), which is comparable to high-performance metallic nanosheets of 1T MoS2.91 The VS2/glassy carbon electrodes exhibited good cycling stability with good rate capability in different sulfate based electrolytes as shown in Fig. 8d. Metallic 1T-VSe2 is another interesting emerging electrode material with high conductivity and huge surface area for charge storage. High conductivity emerges from the atom plane with strong electron coupling of the V–V atom network. The CVD method was followed to develop 1T VSe2 nanosheets for a flexible, in-plane solid-state supercapacitor.188 The solid-state supercapacitor built on the PET substrate with PVA/KNO3 retained its rectangular shaped CV curve up to 20 V s−1 revealing its dominant EDLC behavior. Also, the linear relationship of the discharge current density showed a high-power capability of the device. A maximum specific capacitance of 4.17 mF cm−2 was achieved at a current density of 1 mA cm−2 with 78% capacitance retention after 2000 cycles. The bending test performed at an angle of 40° showed that 90% of its initial capacitance was retained. Hybridizing VSe2 with rGO would enhance the total electrochemical performance due to the synergistic effect of redox and EDLC charge storage. The VSe2/rGO supercapacitor developed via a hydrothermal route with 0.3 wt% of rGO delivered a good capacitance of 680 F g−1 at a mass normalized current density of 1 A g−1.186 This value is ∼7 times higher than the VSe2 supercapacitor alone. The device also delivered a very high energy density of 212 W h kg−1 and showed good cycling stability of 81% retention after 10000 cycles.
Fig. 8 (a) Schematic showing the intercalation process for charge-storage in 1T VS2 nanosheets, (b) CV curves of VS2/glassy carbon electrodes in 0.5 M H2SO4 at different scan rates, (c) scan rate dependence of the capacitance of VS2/glassy carbon electrodes and (d) cycling performance in sulfate electrolyte solutions. Reprinted with permission from ref. 57 Copyright (2017) American Chemical Society. |
Most of the 2D TMD electrodes are sulfide and selenide-based, while a few works are based on telluride-based TMDs as the energy storage material. They have a better electrical conductivity as they are metallic in nature. Yu et al. performed liquid exfoliation of CVT grown 1T WTe2 single crystals to develop 1T WTe2 nanosheets.95 These nanosheets had a lateral size in the range of several hundred nanometers to micrometers with a thickness of 1.3–5.31 nm. An all-solid-state supercapacitor assembled with these nanosheets and PVA/H3PO4 electrolytes delivered a specific capacitance of 221 F g−1 with an energy density of 31 W h kg−1. The 1T WTe2 phase also showed stability by retaining 91% capacitance after 5500 cycles. Nevertheless, 2D TiS2 nanocrystals have also emerged as semimetal TMDs that have recently demonstrated good electrochemical performance for Li-ion batteries90 and are expected to open opportunities in the area of energy storage, particularly in supercapacitors.
Fig. 9 (a) SEM image of the MoS2/GNS hybrid, (b) CV curves of the fabricated MnO2/GNS//MoS2/GNS ASC device measured at various scan rates in the voltage range of 0 to 2.0 V and (c) two assembled all-solid-state ASC devices connected in series to simultaneously light up the commercial LEDs. Reproduced with permission from ref. 140 copyright (2016) Royal Society of Chemistry. (d) FESEM images of NiSe@MoSe2 nanosheet arrays (e) schematic illustration of the NiSe@MoSe2//N-PMCN ASC and (f) CV curves of the NiSe@MoSe2//N-PMCN ASC at different scan rates. Reproduced with permission from ref. 192 copyright (2017) American Chemical Society. |
To achieve a high energy density, an advanced hierarchical NiS/MoS2 hybrid anode structure was prepared in which NiS nanoparticles were loaded into MoS2 using the glucose assisted hydrothermal method in the presence of the CNT backbone.192 The entangled 1D hierarchical structures intertwined with each other construct 3D porous conducting networks which facilitate the fast diffusion of electrolyte ions and conducting electron pathways. The asymmetric supercapacitor device assembled using the NiS/MoS2/CNT hybrid anode with activated carbon manifests a high energy density of 40 W h kg−1. A novel NiSe@MoSe2 nanosheet array (Fig. 9d) prepared using the one-step hydrothermal method directly from nickel foam was assembled with nitrogen-doped carbon nanosheets. A supercapacitor assembled in an asymmetric configuration (Fig. 9e) was able to operate at 1.65 V (Fig. 9f) and demonstrated an energy density of 32.6 W h kg−1. The device showed outstanding cycling stability with 91.4% capacitance retention after 5000 cycles.193 Metallic VS2 shows extraordinary performance as a positive electrode with various negative electrodes based on carbon materials, polymers and their composites. For example, VS2 nanosheets have been used with activated carbon as positive and negative electrodes, respectively, to construct an asymmetric supercapacitor device which yields a maximum energy density of 42 W h kg−1 and a power density of 700 W kg−1 within an operational voltage window of 0–1.4 V.87 Moreover, a capacitance retention of 99% was observed after 5000 cycles at a current density of 2 A g−1. In a recent report, an asymmetric supercapacitor was assembled with the VS2 nanosheets as a positive electrode and carbonized iron (C-Fe)/PANI nanocomposite as a negative electrode.194 The as-fabricated supercapacitor exhibits a high operating voltage of 1.7 V in KOH electrolyte at a current density of 2 A g−1. Notably, this device endures 10000 charge/discharge cycles with only 5% loss in capacitance and demonstrated high energy and power densities of 27.8 W h kg−1 and 2991.5 W kg−1, respectively. An asymmetric Li-ion supercapacitor assembled with 2D TiS2 and activated carbon electrodes exhibited an energy density of 49 W h kg−1 and retained 76% of its initial capacitance after 2000 cycles.60
Despite several approaches towards achieving high energy and power densities for storage applications using 2D TMDs, their commercial success towards large scale industrial production is meager because:
(i) The current synthesis methods for most of the 2D materials mainly rely on the mechanical/chemical exfoliation of the nano/micro size 2D flakes from their bulk counterparts. This method is non-scalable, uncontrollable and unreliable, and therefore not practical for commercial production. Hence, viable methods for the direct integration of large area 2D TMD active materials and their hybrids must be developed.
(ii) Significant efforts have been invested in achieving large specific capacitance or energy density by scaling 2D TMDs with an array of organic components in various morphologies. Unfortunately, the success dictated by these endeavors is merely experimental. Theoretical aspects of the TMD-based hybrids must be simultaneously established to unveil the fundamental mechanism of the structure–property relationship, synergistic effects, and adaptability of 2D TMDs with distinct host materials.
(iii) The success of the metallic TMD phase is remarkable and shows great promise towards solving energy storage problems. But, the phase change in TMDs from an unstable 1T phase to a stable 2H phase or the presence of mixed phases (1T–2H) currently limits their true potential. Primarily, the production of metallic phase 2D TMDs other than MoS2 must be achieved using other methods rather than chemical methods.
(iv) Like electrode materials, the electrolyte plays a vital role in deciding the electrochemical performance of supercapacitors. However, the repeated use of available aqueous/non-aqueous electrolytes has made them incompetent/obsolete with tremendous research invested in the development of electrode materials. It is imperative to simultaneously research novel electrolytes that reinforce the functioning of newly available TMDs to achieve higher operating voltages/energy densities.
(v) Other 2D materials such as MXenes and phosphorene have recently been explored to exhibit extraordinary performances due to their high electronic conductivity, large surface areas, and high chemical stability. A combination of these materials with 2D TMDs in an asymmetric device configuration is expected to show unprecedented electrochemical performance for practical applications.
Hence, the continued efforts towards desirable electronic/mechanical properties in 2D TMDs are of great significance to overcome their inherent limitations. We strongly believe that the days are nearer to use a 2D material-based storage device in wearable devices.
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