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隧道光晶体管中巨斯塔克效应驱动的轨道选通

Orbital Gating Driven by Giant Stark Effect in Tunneling Phototransistors.

作者信息

Kim Eunah, Hwang Geunwoo, Kim Dohyun, Won Dongyeun, Joo Yanggeun, Zheng Shoujun, Watanabe Kenji, Taniguchi Takashi, Moon Pilkyung, Kim Dong-Wook, Sun Linfeng, Yang Heejun

机构信息

Department of Energy Science, Sungkyunkwan University, Suwon, 16419, Korea.

National Institute for Materials Science, 1-1 Namiki, Tsukuba, 303-0044, Japan.

出版信息

Adv Mater. 2022 Feb;34(6):e2106625. doi: 10.1002/adma.202106625. Epub 2021 Dec 22.

Abstract

Conventional gating in transistors uses electric fields through external dielectrics that require complex fabrication processes. Various optoelectronic devices deploy photogating by electric fields from trapped charges in neighbor nanoparticles or dielectrics under light illumination. Orbital gating driven by giant Stark effect is demonstrated in tunneling phototransistors based on 2H-MoTe without using external gating bias or slow charge trapping dynamics in photogating. The original self-gating by light illumination modulates the interlayer potential gradient by switching on and off the giant Stark effect where the d 2-orbitals of molybdenum atoms play the dominant role. The orbital gating shifts the electronic bands of the top atomic layer of the MoTe by up to 100 meV, which is equivalent to modulation of a carrier density of 7.3 × 10 cm by electrical gating. Suppressing conventional photoconductivity, the orbital gating in tunneling phototransistors achieves low dark current, practical photoresponsivity (3357 AW ), and fast switching time (0.5 ms) simultaneously.

摘要

晶体管中的传统门控利用外部电介质产生的电场,这需要复杂的制造工艺。各种光电器件通过光照下相邻纳米颗粒或电介质中捕获电荷产生的电场来实现光控门控。基于2H-MoTe的隧穿光电晶体管展示了由巨斯塔克效应驱动的轨道门控,无需外部门控偏置或光控门控中缓慢的电荷俘获动力学。通过光照实现的原始自门控通过开启和关闭巨斯塔克效应来调制层间电势梯度,其中钼原子的d 2轨道起主导作用。轨道门控使MoTe顶部原子层的电子能带移动高达100 meV,这相当于通过电门控调制7.3×10 cm的载流子密度。隧穿光电晶体管中的轨道门控抑制了传统光电导,同时实现了低暗电流、实际的光响应度(3357 AW)和快速开关时间(0.5 ms)。

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