Toral-Lopez A, Marin E G, Gonzalez-Medina J M, Romero F J, Ruiz F G, Morales D P, Rodriguez N, Godoy A
Dpto. Electrónica, Fac. Ciencias, Universidad de Granada 18071 Spain
Dipartimento di Ingegneria dell'Informazione, Università di Pisa 56122 Pisa Italy.
Nanoscale Adv. 2018 Nov 30;1(3):1077-1085. doi: 10.1039/c8na00109j. eCollection 2019 Mar 12.
BioFETs based on two-dimensional materials (2DMs) offer a unique opportunity to enhance, at a low cost, the sensitivity of current biosensors enabling the design of compact devices compatible with standard CMOS technology. The unique combination of large exposed surface areas and minimal thicknesses of 2DMs is an outstanding feature for these devices, and the assessment of their behaviour requires combined experimental and theoretical efforts. In this work we present a 2D-material based BioFET simulator including complex electrolyte reactions and analysing different models for the electrolyte-molecule interaction. These models describe how the molecular charge is screened by the electrolyte ions when their distributions are modified. The electrolyte simulation is validated against experimental results as well as against the analytical predictions of the Debye-Hückel approximation. The role of the electrolyte charge screening as well as the impact of the interaction model on the device responsivity are analysed in detail. The results are discussed in order to conclude about the consequences of employing different interaction approximations for the simulation of BioFETs and more generally on the correct modelling of biomolecule-device interaction in BioFETs.
基于二维材料(2DMs)的生物场效应晶体管(BioFETs)为低成本提高当前生物传感器的灵敏度提供了独特机遇,从而能够设计出与标准互补金属氧化物半导体(CMOS)技术兼容的紧凑型器件。二维材料大的暴露表面积与极小的厚度这一独特组合是这些器件的突出特性,而对其行为的评估需要实验和理论方面的共同努力。在这项工作中,我们展示了一种基于二维材料的BioFET模拟器,该模拟器包含复杂的电解质反应,并分析了电解质 - 分子相互作用的不同模型。这些模型描述了当电解质离子分布发生改变时,分子电荷是如何被电解质离子屏蔽的。电解质模拟通过实验结果以及德拜 - 休克尔近似的解析预测进行了验证。详细分析了电解质电荷屏蔽的作用以及相互作用模型对器件响应度的影响。对结果进行了讨论,以便得出关于采用不同相互作用近似来模拟BioFETs的后果,以及更普遍地关于BioFETs中生物分子 - 器件相互作用的正确建模的结论。