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可集成硅纳米线场效应传感器在室温下对氨气的高灵敏度检测

Highly Sensitive Ammonia Gas Detection at Room Temperature by Integratable Silicon Nanowire Field-Effect Sensors.

作者信息

Song Xiaopan, Hu Ruijin, Xu Shun, Liu Zongguang, Wang Junzhuan, Shi Yi, Xu Jun, Chen Kunji, Yu Linwei

机构信息

National Laboratory of Solid State Microstructures/School of Electronics Science and Engineering, Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing 210093, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2021 Mar 31;13(12):14377-14384. doi: 10.1021/acsami.1c00585. Epub 2021 Mar 22.

Abstract

Toxic gas monitoring at room temperature (RT) is of great concern to public health and safety, where ultrathin silicon nanowires (SiNWs), with diameter <80 nm, are ideal one-dimensional candidates to achieve high-performance field-effect sensing. However, a precise integration of the tiny SiNWs as active gas sensor channels has not been possible except for the use of expensive and inefficient electron beam lithography and etching. In this work, we demonstrate an integratable fabrication of field-effect sensors based on orderly SiNW arrays, produced via step-guided in-plane solid-liquid-solid growth. The back-gated SiNW sensors can be tuned into suitable subthreshold detection regime to achieve an outstanding field-effect sensitivity (75.8% @ 100 ppm NH), low detection limit (100 ppb), and excellent selectivity to NH gas at RT, with fast response/recovery time scales (/) of 20 s (at 100 ppb NH) and excellent repeatability and high stability over 180 days. These outstanding sensing performances can be attributed to the fast charge transfer between adsorbed NH molecules and the exposed SiNW channels, indicating a convenient strategy to fabricate and deploy high-performance gas detectors that are widely needed in the booming marketplace of wearable or portable electronics.

摘要

室温(RT)下的有毒气体监测对公众健康和安全至关重要,其中直径小于80纳米的超薄硅纳米线(SiNWs)是实现高性能场效应传感的理想一维候选材料。然而,除了使用昂贵且低效的电子束光刻和蚀刻技术外,将微小的SiNWs精确集成作为有源气体传感器通道是不可能的。在这项工作中,我们展示了一种基于有序SiNW阵列的场效应传感器的可集成制造方法,该阵列通过分步引导的面内固-液-固生长产生。背栅SiNW传感器可以被调整到合适的亚阈值检测区域,以在室温下实现出色的场效应灵敏度(100 ppm NH时为75.8%)、低检测限(100 ppb)以及对NH气体的优异选择性,其快速响应/恢复时间尺度(/)为20秒(在100 ppb NH时),并且在180天内具有出色的重复性和高稳定性。这些出色的传感性能可归因于吸附的NH分子与暴露的SiNW通道之间的快速电荷转移,这表明了一种方便的策略,可用于制造和部署在蓬勃发展的可穿戴或便携式电子产品市场中广泛需求的高性能气体探测器。

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