Issue 3, 2023

Impact of coherent core/shell architecture on fast response in InP-based quantum dot photodiodes

Abstract

Solution-processed, cadmium-free quantum dot (QD) photodiodes are compatible with printable optoelectronics and are regarded as a potential candidate for wavelength-selective optical sensing. However, a slow response time resulting from low carrier mobility and a poor dissociation of charge carriers in the optically active layer has hampered the development of the QD photodiodes with nontoxic device constituents. Herein, we report the first InP-based photodiode with a multilayer device architecture, working in photovoltaic mode in photodiode circuits. The photodiode showed the fastest response speed with rising and falling times of τr = 4 ms and τf = 9 ms at a voltage bias of 0 V at room temperature in ambient air among the Cd-free photodiodes. The single-digit millisecond photo responses were realized by efficient transportation of the photogenerated carriers in the optically active layer resulting from coherent InP/ZnS core/shell QD structure, fast separation of electron and hole pairs at the interface between QD and Al-doped ZnO layers, and optimized conditions for uniform deposition of each thin film. The results suggested the versatility of coherent core/shell QDs as a photosensitive layer, whose structures allow various semiconductor combinations without lattice mismatch considerations, towards fast response, high on/off ratios, and spectrally tunable optical sensing.

Graphical abstract: Impact of coherent core/shell architecture on fast response in InP-based quantum dot photodiodes

Supplementary files

Article information

Article type
Paper
Submitted
21 Oct 2022
Accepted
18 Dec 2022
First published
17 Jan 2023
This article is Open Access
Creative Commons BY-NC license

Nanoscale Adv., 2023,5, 907-915

Impact of coherent core/shell architecture on fast response in InP-based quantum dot photodiodes

K. Nemoto, J. Watanabe, H. Yamada, H. Sun and N. Shirahata, Nanoscale Adv., 2023, 5, 907 DOI: 10.1039/D2NA00734G

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