The Department of Chemical Engineering and Russell Berrie Nanotechnology Institute, Technion-Israel Institute of Technology , Haifa 3200003, Israel.
ACS Appl Mater Interfaces. 2013 Nov 13;5(21):11172-83. doi: 10.1021/am403421g. Epub 2013 Oct 21.
We report on the sensing of different polar and nonpolar volatile organic compounds (VOCs) in an atmosphere with background humidity (relative humidity: 40%), using molecularly modified silicon nanowire field effect transistors (SiNW FETs). In this endeavor, a systematic comparative analysis is performed with: (i) SiNW FETs that were functionalized with a series of molecules having different electron-withdrawing and electron-donating end groups; and (ii) SiNW FETs that are functionalized with a series of molecules having similar functional groups but different backbone lengths. The analysis of the sensing signals are focused on three main FET parameters: (i) changes in the threshold voltage, (ii) changes in the carrier mobility, and (iii) changes in the on-current, compared to the baseline values under vacuum. Using discriminant factor analysis, the performance of the molecularly modified SiNW FETs is further analyzed as sensors array. The combination of sensors having the best discriminative power between the various VOCs are identified and discussed in terms of their constituent surface modifications.
我们报告了在背景湿度(相对湿度:40%)下使用分子修饰的硅纳米线场效应晶体管(SiNW FET)对不同极性和非极性挥发性有机化合物(VOC)的传感情况。在这项研究中,我们对以下两种情况进行了系统的比较分析:(i)用具有不同吸电子和供电子端基的一系列分子功能化的 SiNW FET;和(ii)用具有相似官能团但不同主链长度的一系列分子功能化的 SiNW FET。传感信号的分析主要集中在三个主要的 FET 参数上:(i)与真空下的基线值相比,阈值电压的变化;(ii)载流子迁移率的变化;和(iii)导通电流的变化。使用判别因子分析,进一步分析了作为传感器阵列的分子修饰 SiNW FET 的性能。根据其组成的表面修饰,确定并讨论了在各种 VOC 之间具有最佳区分能力的传感器组合。