Vertical 1T’‐WTe2/WS2 Schottky‐Barrier Phototransistor with Polarity‐Switching Behavior

Author:

Ma Jingyi1,Wang Jina1,Chen Quan1,Chen Shengdi1,Yang Mengmeng1,Sun Yiming1,Zheng Zhaoqiang2,Huo Nengjie1,Yan Yong3,Li Jingbo4,Gao Wei1ORCID

Affiliation:

1. Guangdong Provincial Key Laboratory of Chip and Integration Technology School of Semiconductor Science and Technology South China Normal University Foshan 528225 P. R. China

2. College of Materials and Energy Guangdong University of Technology Guangzhou 510006 P. R. China

3. Henan Key Laboratory of Photovoltaic Materials School of Physics Henan Normal University Xinxiang 453007 P. R. China

4. College of Optical Science and Engineering Zhejiang University Hangzhou 310027 P. R. China

Abstract

AbstractIn recent years, 2D reconfigurable phototransistors (RPTs) have been applied in broadband convolutional processing, retinomorphic hardware devices, and non‐volatile memorizers. However, there has been a lack of investigation into all‐2D Schottky junctions used in RPT with polarity control behavior. Herein, a vertically stacked multilayered WS2/WTe2 Schottky RPT is reported. The semimetal characteristics of 1T’‐WTe2 is designed to form a built‐in electric field of 69 meV across the heterojunction and WS2 exhibits gate‐tunable characteristics. Therefore, reconfigurable rectifying behavior and self‐driven bidirectional photo response can be achieved. The phototransistor possesses a gate‐tunable rectification ratio ranging from 10−2 to 105, and the corresponding logic half‐wave rectifier shows excellent switchable rectifying states. Under 635 nm illumination, the responsivity can be adjusted from −1325 to 430 mA W−1 with reversed signs. Meanwhile, the maximum power conversion efficiency is 2.84%, and the specific detectivity is 1.47 × 1012 Jones. The device shows both negative and positive responsivity with linear gate dependence within a voltage window of 10 V. Impressively, nonvolatile photovoltaic performance can be demonstrated by reversing short‐circuit current and open‐circuit voltage by applying and releasing pulsed gate voltage. Finally, reconfigurable polarization behavior, single‐pixel imaging, and the optical logic circuit are applicable to the heterostructure.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

Electronic, Optical and Magnetic Materials

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