Piezoelectricity in a mixture of chiral 1D hybrid lead bromide and iodide systems

Abstract

Chiral organic–inorganic hybrid perovskites possess inherent structural asymmetry and lattice flexibility, enabling a piezoelectric response suitable for energy harvesting and sensing technologies. Here, we introduced a new strategy for the development of a piezoelectric nanogenerator (PENG) constructed from a mixture of two chiral one-dimensional hybrid lead halides, (R-MBA)PbBr3 and (R-MBA)PbI3 (MBA: methylbenzylammonium). Individually, both hybrid halide systems exhibit piezoelectric behaviour, but when mixed, the piezoelectric output increases significantly. The highest performance is achieved for the optimized mixed halide mixture [75 wt% (R-MBA)PbBr3 + 25 wt% (R-MBA)PbI3]. To improve flexibility and mechanical endurance, we incorporated the optimized halide mixture into a polycaprolactone (PCL) polymer matrix. The device with 15 wt% of the optimized halide mixture embedded in PCL demonstrates the highest peak-to-peak voltage of 40.8 V with a power density of 83.1 μW cm−2. The halide mixture–PCL composite significantly enhances the device performance, facilitated by its endurance to a higher impact force of 21 N at 8 Hz compared to the neat mixture of hybrid halide salts without PCL (4 N at 6 Hz), leading to a 1.5 times enhancement in the peak-to-peak voltage. Finally, self-powered pressure sensors were fabricated by integrating multiple PENG devices and demonstrated for smart door mat applications. These findings show that physical mixing of chiral hybrid lead halides might be a useful approach to enhance piezoelectric performance.

Graphical abstract: Piezoelectricity in a mixture of chiral 1D hybrid lead bromide and iodide systems

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Article information

Article type
Paper
Submitted
23 Jul 2025
Accepted
23 Sep 2025
First published
23 Sep 2025
This article is Open Access
Creative Commons BY-NC license

J. Mater. Chem. C, 2025, Advance Article

Piezoelectricity in a mixture of chiral 1D hybrid lead bromide and iodide systems

U. Makhija, V. Kushwaha, N. Prajesh, A. Nag and R. Boomishankar, J. Mater. Chem. C, 2025, Advance Article , DOI: 10.1039/D5TC02798E

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