材料科学
单层
异质结
光电流
光电子学
聚合物
图层(电子)
共价键
光电探测器
晶体管
纳米技术
活动层
锂(药物)
逐层
表面改性
金属
离子键合
过渡金属
自组装单层膜
载流子
光电导性
锚固
有机半导体
作者
Yu Luo,Huiqiang Lu,Dehao Luo,Liu He,Wenkang Wei,Chunying Yang,Conghui Yuan,Yiting Xu,Birong Zeng,Lizong Dai
出处
期刊:Small
[Wiley]
日期:2025-11-18
卷期号:: e09929-e09929
标识
DOI:10.1002/smll.202509929
摘要
Abstract Covalent modification of monolayer 2D transition metal dichalcogenides (1L‐TMDs) such as 1L‐MoS 2 with organic species presents a promising strategy for developing advanced electronic and optoelectronic devices. However, a daunting challenge remains in the construction of an ultra‐thin polymer layer on the surface of 1L‐TMDs via covalent interaction. Herein, a coordination‐driven growth approach to attaching an ultra‐thin boronate ester polymer (BP) layer with precisely controlled thicknesses on the surface of 1L‐MoS 2 is demonstrated. The as‐formed BP‐MoS 2 heterostructures feature an atomically flat interface that facilitates ultrafast interlayer charge transfer. By tuning the BP layer thickness from several to over ten nanometers, BP‐MoS 2 enabled field‐effect transistors (FETs) demonstrate exceptional multi‐order‐of‐magnitude current modulation capabilities. BP‐MoS 2 photodetectors exhibit a remarkable 68‐fold enhancement in photocurrent switching ratio (≈3000) and an order‐of‐magnitude improvement in detectivity (1.7 × 10 12 Jones) compared to those of the pristine 1L‐MoS 2 device. Furthermore, the BP layer offers a robust platform for further surface decoration of 1L‐MoS 2 , because the boronate ester groups are highly active in anchoring metal ions. It is shown that anchoring lithium ions in BP evidently enhances carrier transport in the BP‐MoS 2 heterostructure. This strategy to covalently combine polymer layers and 1L‐TMDs may establish a versatile platform for designing functional heterostructures.
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