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基于金属纳米粒子修饰的纳米线增强型晶体管的亚 ppm 特定气体传感器阵列的合理设计。

Rational design of sub-parts per million specific gas sensors array based on metal nanoparticles decorated nanowire enhancement-mode transistors.

机构信息

Department of Physics and Key Laboratory of Artificial Micro- and Nano-structures of Ministry of Education, Wuhan University , Wuhan 430072, China.

出版信息

Nano Lett. 2013 Jul 10;13(7):3287-92. doi: 10.1021/nl401498t. Epub 2013 Jun 27.

DOI:10.1021/nl401498t
PMID:23796312
Abstract

"One key to one lock" hybrid sensor configuration is rationally designed and demonstrated as a direct effective route for the target-gas-specific, highly sensitive, and promptly responsive chemical gas sensing for room temperature operation in a complex ambient background. The design concept is based on three criteria: (i) quasi-one-dimensional metal oxide nanostructures as the sensing platform which exhibits good electron mobility and chemical and thermal stability; (ii) deep enhancement-mode field-effect transistors (E-mode FETs) with appropriate threshold voltages to suppress the nonspecific sensitivity to all gases (decouple the selectivity and sensitivity away from nanowires); (iii) metal nanoparticle decoration onto the nanostructure surface to introduce the gas specific selectivity and sensitivity to the sensing platform. In this work, using Mg-doped In2O3 nanowire E-mode FET sensor arrays decorated with various discrete metal nanoparticles (i.e., Au, Ag, and Pt) as illustrative prototypes here further confirms the feasibility of this design. Particularly, the Au decorated sensor arrays exhibit more than 3 orders of magnitude response to the exposure of 100 ppm CO among a mixture of gases at room temperature. The corresponding response time and detection limit are as low as ∼4 s and ∼500 ppb, respectively. All of these could have important implications for this "one key to one lock" hybrid sensor configuration which potentially open up a rational avenue to the design of advanced-generation chemical sensors with unprecedented selectivity and sensitivity.

摘要

“一把钥匙开一把锁”混合传感器配置被合理设计并展示为一种直接有效的途径,用于在复杂环境背景下实现室温操作的目标气体特异性、高灵敏度和快速响应的化学气体传感。该设计理念基于三个标准:(i)准一维金属氧化物纳米结构作为传感平台,具有良好的电子迁移率和化学及热稳定性;(ii)具有适当阈值电压的深增强模式场效应晶体管(E-mode FET),用于抑制对所有气体的非特异性敏感性(将选择性和灵敏度与纳米线分离);(iii)金属纳米颗粒修饰在纳米结构表面,为传感平台引入气体特异性选择性和灵敏度。在这项工作中,使用 Mg 掺杂的 In2O3 纳米线 E-mode FET 传感器阵列,用各种离散的金属纳米颗粒(即 Au、Ag 和 Pt)进行修饰,作为说明性原型,进一步证实了这种设计的可行性。特别是,Au 修饰的传感器阵列在室温下对混合气体中 100 ppm CO 的暴露表现出超过 3 个数量级的响应。相应的响应时间和检测限分别低至约 4 s 和约 500 ppb。所有这些都对这种“一把钥匙开一把锁”混合传感器配置具有重要意义,这可能为设计具有前所未有选择性和灵敏度的新一代化学传感器开辟一条合理途径。

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