Department of electrical Engineering, Amirkabir University of Technology, Tehran, Iran.
Small. 2014 Oct 29;10(20):4193-9. doi: 10.1002/smll.201400691. Epub 2014 Jun 30.
A graphene(G)/Silicon(Si) heterojunction Schottky diode and a simple method that evaluates its electrical response to different chemical vapors using electrochemical impedance spectroscopy (EIS) are implemented. To study the impedance response of the device of a given vapor, relative impedance change (RIC) as a function of the frequency is evaluated. The minimum value of RIC for different vapors corresponds to different frequency values (18.7, 12.9 and 10.7 KHz for chloroform, phenol, and methanol vapors respectively). The impedance responses to phenol, beside other gases used as model analytes for different vapor concentrations are studied. The equivalent circuit of the device is obtained and simplified, using data fitting from the extracted values of resistances and capacitances. The resistance corresponding to interphase G/Si is used as a parameter to compare the performance of this device upon different phenol concentrations and a high reproducibility with a 4.4% relative standard deviation is obtained. The efficiency of the device fabrication, its selectivity, reproducibility and easy measurement mode using EIS makes the developed system an interesting alternative for gases detection for environmental monitoring and other industrial applications.
提出了一种基于石墨烯(G)/硅(Si)异质结肖特基二极管的结构,并利用电化学阻抗谱(EIS)研究了其对不同化学蒸气的电响应。为了研究给定蒸气对器件阻抗响应的影响,评估了相对阻抗变化(RIC)随频率的变化。对于不同的蒸气,RIC 的最小值对应于不同的频率值(氯仿、苯酚和甲醇蒸气分别为 18.7、12.9 和 10.7 KHz)。除了其他用作不同蒸气浓度模型分析物的气体之外,还研究了该器件对苯酚蒸气的阻抗响应。通过从提取的电阻和电容值进行数据拟合,获得了器件的等效电路并进行了简化。将界面 G/Si 的电阻用作参数,比较了该器件在不同苯酚浓度下的性能,得到了 4.4%的相对标准偏差的高重现性。该器件制造效率高、选择性好、重现性好,并且可以使用 EIS 进行简单的测量,这使得开发的系统成为环境监测和其他工业应用中气体检测的一种有吸引力的选择。