Microscopic Origin of Piezoelectricity in Lead-Free Halide Perovskite: Application in Nanogenerator Design

Pandey, Richa ; SB, Gangadhar ; Grover, Shivani ; Singh, Sachin Kumar ; Kadam, Ankur ; Ogale, Satishchandra ; Waghmare, Umesh V. ; Rao, V. Ramgopal ; Kabra, Dinesh (2019) Microscopic Origin of Piezoelectricity in Lead-Free Halide Perovskite: Application in Nanogenerator Design ACS Energy Letters, 4 (5). pp. 1004-1011. ISSN 2380-8195

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Official URL: http://doi.org/10.1021/acsenergylett.9b00323

Related URL: http://dx.doi.org/10.1021/acsenergylett.9b00323

Abstract

In this work, we report a lead-free hybrid halide perovskite system with a very high piezoelectric charge density for applications in nanogenerators. We use materials engineering by incorporation of formamidinium tin iodide, FASnI3, in a soft polymer (polyvinylidene fluoride, PVDF) matrix and demonstrate high-performance large-area flexible piezoelectric nanogenerators. This is achieved by using self-poled thin films of a FASnI3:PVDF nanocomposite. The fabricated devices show an output voltage up to ∼23 V and power density of 35.05 mW cm–2 across a 1 MΩ resistor, under a periodic vertical compression, with a release pressure of ∼0.1 MPa. Measured values of the local piezoelectric coefficient (d33) of these films reach up to 73 pm/V. We provide the microscopic mechanism using first-principles calculations, which suggest that a soft elastic nature and soft polar optic phonons are responsible for the high piezoelectric response of FASnI3.

Item Type:Article
Source:Copyright of this article belongs to American Chemical Society.
ID Code:135812
Deposited On:18 Aug 2023 11:20
Last Modified:18 Aug 2023 11:20

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