Gate‐controlled Multispectral Response in Graphene‐Based Heterostructure Photodetector

Author:

Dat Vu Khac12,Hong Chengyun12,Tran Minh Dao12,Chau Tuan Khanh1,Do Van Dam3,Tran Trang Thu1,Nguyen Minh Chien3,Duong Hai Phuong1,Oh Saejin12,Yu Woo Jong3,Kim Jeongyong1,Kim Ji‐Hee124ORCID

Affiliation:

1. Department of Energy Science Sungkyunkwan University Suwon 16419 Republic of Korea

2. Center for Integrated Nanostructure Physics Institute for Basic Science (IBS) Suwon 16419 Republic of Korea

3. Department of Electrical and Computer Engineering Sungkyunkwan University Suwon 16419 Republic of Korea

4. Department of Physics Pusan National University Busan 46241 Republic of Korea

Abstract

AbstractMultispectral photodetectors are crucial for detecting light across a wide wavelength range, serving applications requiring precise wavelength specificity and spectral imaging capabilities. However, the development of these photodetectors is hindered by several challenges, including material compatibility issues, low responsivity, the complexity of signal processing, and precise bandgap engineering. A strategy is proposed using a MoS2‐graphene photodetector to address these issues. Gate‐tunable spectral responses are achieved in a graphene photodetector by utilizing carrier transfer from MoS2 and interfacial gating effects from a SiO2/p‐doped Si substrate. Precise gate bias manipulation enables selective photocurrent capture in the range of 500–680 nm, identical to the absorption of MoS2. Furthermore, by applying a highly negative gate bias, photocurrent signals below the MoS2 bandgap, i.e., in the 680–800 nm region, are detected, significantly provoking broadband photodetection. The results highlight the versatility of gate‐tunable multispectral response, leading to an exceptional responsivity of up to 1.4  ×  105 mA W−1. Moreover, through the precise modulation of gate bias and incident wavelength, it seamlessly switches between negative and positive photocurrents. This study provides important insight into carrier photogeneration in sensitized graphene‐based multifunctional optoelectronic devices, establishing a versatile platform for detecting a broad range of photocurrents with a single detector.

Publisher

Wiley

Subject

Electronic, Optical and Magnetic Materials

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