Anvarifard Mohammad K, Ramezani Zeinab
Department of Engineering Sciences, Faculty of Technology and Engineering, East of Guilan, University of Guilan, Rudsar 4489163157, Iran.
Department of Electrical and Computer Engineering, College of Engineering, University of Miami, Miami, FL 33146, USA.
Biosensors (Basel). 2025 Aug 11;15(8):525. doi: 10.3390/bios15080525.
We present a highly sensitive and selective gas sensor based on an advanced silicon-on-insulator tunnel field-effect transistor (SOI-TFET) architecture, enhanced through the integration of customized conducting polymers. In this design, traditional metal gates are replaced with distinct functional polymers-PPP-TOS/AcCN, PP-TOS/AcCN, PP-FE(CN)/HO, PPP-TCNQ-TOS/AcCN, and PPP-ClO/AcCN-which enable precise molecular recognition and discrimination of various target gases. To further enhance sensitivity, the device employs an oppositely doped source region, significantly improving gate control and promoting stronger band-to-band tunneling. This structural modification amplifies sensing signals and improves noise immunity, allowing reliable detection at trace concentrations. Additionally, optimization of the subthreshold swing contributes to faster switching and response times. Thermal stability is addressed by embedding a P-type buffer layer within the buried oxide, which increases thermal conductivity and reduces lattice temperature, further stabilizing device performance. Experimental results demonstrate that the proposed sensor outperforms conventional SOI-TFET designs, exhibiting superior sensitivity and selectivity toward analytes such as methanol, chloroform, isopropanol, and hexane. Beyond gas sensing, the unique polymer-functionalized gate design enables integration of microbial biosensing capabilities, making the platform highly versatile for biochemical detection. This work offers a promising pathway toward ultra-sensitive, low-power sensing technologies for environmental monitoring, industrial safety, and medical diagnostics.
我们展示了一种基于先进的绝缘体上硅隧道场效应晶体管(SOI-TFET)架构的高灵敏度和选择性气体传感器,通过集成定制的导电聚合物得到了增强。在这种设计中,传统的金属栅极被不同的功能聚合物——PPP-TOS/AcCN、PP-TOS/AcCN、PP-FE(CN)/HO、PPP-TCNQ-TOS/AcCN和PPP-ClO/AcCN所取代,这些聚合物能够实现对各种目标气体的精确分子识别和区分。为了进一步提高灵敏度,该器件采用了反向掺杂的源极区域,显著改善了栅极控制并促进了更强的带间隧穿。这种结构改进放大了传感信号并提高了抗噪声能力,允许在痕量浓度下进行可靠检测。此外,亚阈值摆幅的优化有助于更快的开关和响应时间。通过在掩埋氧化物中嵌入P型缓冲层来解决热稳定性问题,这增加了热导率并降低了晶格温度,进一步稳定了器件性能。实验结果表明,所提出的传感器优于传统的SOI-TFET设计,对甲醇、氯仿、异丙醇和己烷等分析物表现出卓越的灵敏度和选择性。除了气体传感之外,独特的聚合物功能化栅极设计还能够集成微生物生物传感能力,使该平台在生化检测方面具有高度的通用性。这项工作为环境监测、工业安全和医疗诊断的超灵敏、低功耗传感技术提供了一条有前景的途径。