Themed collection Artificial Photosynthesis
Artificial photosynthesis: closing remarks
Faraday Discuss., 2017,198, 549-560
https://doi.org/10.1039/C7FD00133A
Bio-inspired CO2 reduction by a rhenium tricarbonyl bipyridine-based catalyst appended to amino acids and peptidic platforms: incorporating proton relays and hydrogen-bonding functional groups
Faraday Discuss., 2017,198, 279-300
https://doi.org/10.1039/C7FD00003K
Temperature dependence of photocatalytic CO2 reduction by trans(Cl)–Ru(bpy)(CO)2Cl2: activation energy difference between CO and formate production
Faraday Discuss., 2017,198, 263-277
https://doi.org/10.1039/C6FD00242K
Photocatalytic CO2 reduction using water as an electron donor by a powdered Z-scheme system consisting of metal sulfide and an RGO–TiO2 composite
Faraday Discuss., 2017,198, 397-407
https://doi.org/10.1039/C6FD00215C
Supramolecular photocatalysts constructed with a photosensitizer unit with two tridentate ligands for CO2 reduction
Faraday Discuss., 2017,198, 319-335
https://doi.org/10.1039/C6FD00220J
Charge-transfer dynamics at the dye–semiconductor interface of photocathodes for solar energy applications
Faraday Discuss., 2017,198, 449-461
https://doi.org/10.1039/C6FD00228E
Introductory lecture: sunlight-driven water splitting and carbon dioxide reduction by heterogeneous semiconductor systems as key processes in artificial photosynthesis
Faraday Discuss., 2017,198, 11-35
https://doi.org/10.1039/C6FD00221H
Photocatalytic H2 production using a hybrid assembly of an [FeFe]-hydrogenase model and CdSe quantum dot linked through a thiolato-functionalized cyclodextrin
Faraday Discuss., 2017,198, 197-209
https://doi.org/10.1039/C6FD00207B
Spatial distribution of active sites on a ferroelectric PbTiO3 photocatalyst for photocatalytic hydrogen production
Faraday Discuss., 2017,198, 463-472
https://doi.org/10.1039/C6FD00199H
Fe, Ru, and Os complexes with the same molecular framework: comparison of structures, properties and catalytic activities
Faraday Discuss., 2017,198, 181-196
https://doi.org/10.1039/C6FD00227G
Hydricity, electrochemistry, and excited-state chemistry of Ir complexes for CO2 reduction
Faraday Discuss., 2017,198, 301-317
https://doi.org/10.1039/C6FD00223D
13C-Labeling the carbon-fixation pathway of a highly efficient artificial photosynthetic system
Faraday Discuss., 2017,198, 529-537
https://doi.org/10.1039/C6FD00231E
Large-scale QM/MM calculations of the CaMn4O5 cluster in the S3 state of the oxygen evolving complex of photosystem II. Comparison between water-inserted and no water-inserted structures
Faraday Discuss., 2017,198, 83-106
https://doi.org/10.1039/C6FD00230G
Mutual relationships between structural and functional changes in a PsbM-deletion mutant of photosystem II
Faraday Discuss., 2017,198, 107-120
https://doi.org/10.1039/C6FD00213G
Development of a dye molecule-biocatalyst hybrid system with visible-light induced carbon–carbon bond formation from CO2 as a feedstock
Faraday Discuss., 2017,198, 73-81
https://doi.org/10.1039/C6FD00212A
Unravelling charge separation via surface built-in electric fields within single particulate photocatalysts
Faraday Discuss., 2017,198, 473-479
https://doi.org/10.1039/C6FD00214E
Photocatalytic H2 production on trititanate nanotubes coupled with CdS and platinum nanoparticles under visible light: revisiting H2 production and material durability
Faraday Discuss., 2017,198, 419-431
https://doi.org/10.1039/C6FD00192K
CuAAC-based assembly and characterization of a ruthenium–copper dyad containing a diimine–dioxime ligand framework
Faraday Discuss., 2017,198, 251-261
https://doi.org/10.1039/C6FD00204H
Organic–inorganic hybrid photocatalyst for carbon dioxide reduction
Faraday Discuss., 2017,198, 337-351
https://doi.org/10.1039/C6FD00222F
Electrochemical CO2 reduction with low overpotential by a poly(4-vinylpyridine) electrode for application to artificial photosynthesis
Faraday Discuss., 2017,198, 409-418
https://doi.org/10.1039/C6FD00225K
Fluorescence property of photosystem II protein complexes bound to a gold nanoparticle
Faraday Discuss., 2017,198, 121-134
https://doi.org/10.1039/C6FD00188B
Photo-driven electron transfer from the highly reducing excited state of naphthalene diimide radical anion to a CO2 reduction catalyst within a molecular triad
Faraday Discuss., 2017,198, 235-249
https://doi.org/10.1039/C6FD00219F
Strategies to enhance the excitation energy-transfer efficiency in a light-harvesting system using the intra-molecular charge transfer character of carotenoids
Faraday Discuss., 2017,198, 59-71
https://doi.org/10.1039/C6FD00211K
The challenges of solar hydrogen in chemical industry: how to provide, and how to apply?
Faraday Discuss., 2017,198, 509-527
https://doi.org/10.1039/C6FD00196C
Stable hybrid organic/inorganic photocathodes for hydrogen evolution with amorphous WO3 hole selective contacts
Faraday Discuss., 2017,198, 433-448
https://doi.org/10.1039/C6FD00216A
Catecholamine-functionalized graphene as a biomimetic redox shuttle for solar water oxidation
Faraday Discuss., 2017,198, 135-145
https://doi.org/10.1039/C6FD00190D
Temperature dependence of electrocatalytic water oxidation: a triple device model with a photothermal collector and photovoltaic cell coupled to an electrolyzer
Faraday Discuss., 2017,198, 169-179
https://doi.org/10.1039/C6FD00206D
Stabilisation effects of phosphane ligands in the homogeneous approach of sunlight induced hydrogen production
Faraday Discuss., 2017,198, 211-233
https://doi.org/10.1039/C6FD00210B
Towards artificial methanogenesis: biosynthesis of the [Fe]-hydrogenase cofactor and characterization of the semi-synthetic hydrogenase
Faraday Discuss., 2017,198, 37-58
https://doi.org/10.1039/C6FD00209A
Integration of systems for demonstrating realistic devices: general discussion
Faraday Discuss., 2017,198, 539-547
https://doi.org/10.1039/C7FD90019H
Biological approaches to artificial photosynthesis, fundamental processes and theoretical approaches: general discussion
Faraday Discuss., 2017,198, 147-168
https://doi.org/10.1039/C7FD90016C
Molecular catalysts for artificial photosynthesis: general discussion
Faraday Discuss., 2017,198, 353-395
https://doi.org/10.1039/C7FD90017A
Inorganic assembly catalysts for artificial photosynthesis: general discussion
Faraday Discuss., 2017,198, 481-507
https://doi.org/10.1039/C7FD90018J
About this collection
We are delighted to share with you a selection of the papers which will be presented at our Faraday Discussion on Artificial Photosynthesis taking place in Kyoto, Japan in February/March 2017. More information about the event may be found here:http://rsc.li/photosynthesis-fd2017. Additional articles will be added to the collection as they are published. The final versions of all the articles presented and a record of the live discussions will be published after the event.
Artificial photosynthesis has the potential to be one of the most promising sciences and technologies for solving the global environmental problems that may threaten the sustainability of humanity, caused by the exhaustion of fossil energy and carbon resources along with the rapid increase of atmospheric carbon dioxide concentration. A further escalation of the “CO2 crisis” now seems inevitable. Within decades artificial photosynthesis can be expected to provide one of the most likely and realistic options to address the needs of society as a whole. It will be important for scientists from many disciplines to work together towards the breakthroughs and developments that will be needed to realise this vision.