Bandgap engineering of BZT-BCT by Mn doping and the emerging strong photo-pyroelectric effect

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Bandgap engineering of BZT-BCT by Mn doping and the emerging strong photo-pyroelectric effect
Title:
Bandgap engineering of BZT-BCT by Mn doping and the emerging strong photo-pyroelectric effect
Journal Title:
Nano Energy
Keywords:
Publication Date:
10 November 2023
Citation:
Wang, L., Zhang, F., Chen, C., He, X., Boda, M. A., Yao, K., Yi, Z. (2024). Bandgap engineering of BZT-BCT by Mn doping and the emerging strong photo-pyroelectric effect. Nano Energy, 119, 109081. https://doi.org/10.1016/j.nanoen.2023.109081
Abstract:
Developing narrow bandgap ferroelectrics with a sizable polarization presents great potential toward photoelectric applications. Unfortunately, most ferroelectrics exhibit wide bandgaps, while lowering their bandgaps constantly accompanies the serious deterioration of ferroelectricity. By utilizing the Jahn-Teller (J-T) effect of Mn ion, here we report an exception of lead-free ferroelectric 0.5Ba(Zr0.2-xTi0.8Mnx)-0.5(Ba0.7Ca0.3)TiO3 ceramics showing narrow bandgaps and large polarizations. Especially for the composition x = 0.12, a low bandgap of 1.2 eV with a high residual polarization 9.9 µC/cm2 is achieved. Further investigations indicate that it has negligible photovoltaic effect due to the high density of point defects, but a significant improvement in near-infrared (NIR) light induced pyroelectric response, driven by the simultaneously increased photothermal conversion ability and room temperature pyroelectric coefficient. The pyroelectric device as demonstrated shows excellent linear dependence on the NIR light intensity with current and voltage sensitivities of 0.169 nA/(mW/cm2) and 0.052 V/(mW/cm2), respectively. Furthermore, the device possesses substantial pyroelectric response to the infrared irradiation from human body and excellent anti-interference ability. This study not only find an excellent lead-free ferroelectric composition for human body recognition, but also provide a new strategy of materials design for light energy harvesting and photodetection.
License type:
Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0)
Funding Info:
This work was supported by the National Natural Science Foundation of China (Grant Nos. 51872311 and 52202152), the Frontier Science Key Project of the Chinese Academy of Sciences (QYZDB-SSW-JSC027), Natural Science Foundation of Shanghai (22ZR1471200), the Shanghai Science and Technology Innovation Action Plan (No. 20ZR1465500), the Instrument Developing Project of Chinses Academy of Sciences (Grant No. ZDKYYQ20180004) and Shanghai Sailing Program (22YF1455600).

This research / project is supported by the Agency for Science, Technology and Research - RIE2020 Advanced Manufacturing and Engineering (AME) Programmatic Fund
Grant Reference no. : A20G9b0135
Description:
ISSN:
2211-2855
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