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Preferential Perovskite Surface-termination Induced High Piezoresponse in Lead-free in-situ Fabricated Cs3Bi2Br9-PVDF Nanocomposites Promotes Biomechanical Energy Harvesting

纳米复合材料 材料科学 聚偏氟乙烯 复合数 钙钛矿(结构) 纳米发生器 能量收集 光电子学 压电 纳米技术 复合材料 化学工程 能量(信号处理) 聚合物 工程类 统计 数学
作者
Aditi Sahoo,Tufan Paul,A. Nath,Soumen Maiti,Prabhat Kumar,Prasenjit Ghosh,Rupak Banerjee
出处
期刊:Nanoscale [The Royal Society of Chemistry]
标识
DOI:10.1039/d3nr01517c
摘要

Lead-free halide perovskites have gained immense popularity in photovoltaic and energy harvesting applications because of their excellent optical and electrical attributes with minimal toxicity. We synthesized composite films of lead-free Cs3Bi2Br9 perovskite embedded in the polyvinylidene fluoride (PVDF) matrix and have investigated their piezoelectric energy harvesting. Five PVDF@Cs3Bi2Br9 composite films were fabricated with varying wt% of the perovskite in the PVDF. The composite with a 4 wt% of the perovskite shows 85% activation of the electroactive β-phase of PVDF. Additionally, this composite exhibits a maximum polarisation of ∼0.1 μC cm-2 and the best energy storage density of ∼0.8 mJ cm-3 at an applied field of ∼16 kV cm-1 among all the synthesized composites. A nanogenerator fabricated using 4 wt% loading in the composite film produced an instantaneous output voltage of ∼40 V, an instantaneous current of ∼4.1 μA, and a power density of ∼17.8 μW cm-2 across 10 MΩ resistance when repeatedly hammered by the human hand. The nanogenerator is further employed to light up several LEDs and to charge capacitors with a small active area demonstrating significant promise for prospective wearables and portable devices and paving the way for high-performance nanogenerators using lead-free halide perovskites. Density functional theory calculations were performed to understand the interaction of the electroactive phase of the PVDF with different perovskite surface terminations to unravel the various interaction mechanisms and their ensuing charge transfer properties.
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