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Ag nanoparticles at p-Si/ MAPbI3 perovskite interface: improved photo responsivity and response speed in photodetection.

Authors :
Wang, Xinyu
Tang, Chenyu
Yang, Jianming
Yang, Dandan
Lv, Wenli
Sun, Lei
Xu, Sunan
Lu, Chengyu
Zhang, Ningbo
Xu, Xiaoyue
Hu, Yang
Zhang, Qiyue
Cao, Xiancheng
Wang, Shenghao
Jiang, Lin
Peng, Yingquan
Source :
Nanotechnology. 12/2/2024, Vol. 35 Issue 49, p1-10. 10p.
Publication Year :
2024

Abstract

Although enhanced performance of photovoltaic devices by embedding metal nanoparticles in charge transport layer, doping into active layer bulk, decorating the active layer surface, and inserting at the interface between semiconductor and the electrode were reported, the effect of incorporating metal NPs at the interface of single crystal semiconductor and perovskite is rarely tackled. Herein the effects of incorporating Ag nanoparticals (AgNPs) at p-Si/MAPbI3 perovskite interface on the photodiode performance were investigated. The results showed that compared with the reference device (without AgNPs) the photoresponsivity of the device incorporating AgNPs is greatly improved with the exception of light with wavelengths falling in the spectral range where AgNPs have strong optical absorption. This effect is extremely significant for relatively shorter wavelengths in the visible region, and a maximal improvement of around 10.6 times in photoresponsivity was achieved. The physical origin of the exception for spectral range that AgNPs have strong optical absorption is the cancelation of scatter resulted enhancement through AgNPs by band-to-band absorption resulted reduction of photocurrent, in which the generated electron has energy near the fermi level and the hole has large effective mass, which relax by nonradiative recombination, thus making not contribution to the photocurrent. More importantly, the AgNP decorated device showed much faster photo response speed than the reference device, and a maximal improvement of around 7.9 times in rise and fall time was achieved. These findings provide a novel approach for high responsive and high speed detection for weak light. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09574484
Volume :
35
Issue :
49
Database :
Academic Search Index
Journal :
Nanotechnology
Publication Type :
Academic Journal
Accession number :
179713911
Full Text :
https://doi.org/10.1088/1361-6528/ad6dfd