Electrocrystallization of Copper 7,7,8,8-Tetracyanoquinodimethane Charge-Transfer Complex on Flexible Substrates for Real-Time Ammonia Gas Sensing

IF 3.5
Ren Wang, Mohamed Kilani, Jiancheng Lin, Rona Chandrawati, Guangzhao Mao
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Abstract

Real-time monitoring of public safety, individual health, and environmental conditions relies on accurate continuous data collected by gas sensors, which provide users with cost-effective insights to support informed decision-making. This study presents an innovative approach that simplifies the manufacturing process of nanowire (NW)-based gas sensors by enabling direct electrodeposition of NW crystals on various substrates, such as silicon wafers and polyethylene terephthalate (PET). Copper 7,7,8,8-Tetracyanoquinodimethane (CuTCNQ), a charge-transfer complex, is electrodeposited directly onto photolithographically patterned interdigitated triangle-tip electrodes and functions as a chemiresistive gas sensor that responds to ammonia gas through charge interactions. The sensor's performance can be precisely controlled using electrochemical techniques, allowing for tailored sensitivity across different concentration ranges. To enhance the practical application of this technology, a flexible, near-field communication-based passive tag is developed by integrating the CuTCNQ gas sensor with a flexible printed circuit board. This device enables on-demand ammonia concentration analysis and operates battery-free and wireless through mobile phone scanning. This capability is crucial for wearable or industrial devices and aligns with the increasing demand for robust environmental monitoring solutions. This approach represents a significant step forward in improving both human health and environmental protection through accessible and efficient gas sensing technology.

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铜7,7,8,8-四氰喹诺二甲烷电荷转移配合物在柔性衬底上的电结晶用于实时氨气传感
实时监测公共安全、个人健康和环境状况依赖于气体传感器收集的准确连续数据,这些数据为用户提供具有成本效益的见解,以支持明智的决策。本研究提出了一种创新的方法,通过在各种衬底(如硅片和聚对苯二甲酸乙二醇酯(PET))上直接电沉积纳米线(NW)晶体,简化了基于纳米线(NW)的气体传感器的制造过程。铜7,7,8,8-四氰喹诺二甲烷(cutryanoquininodimethane, cucnq)是一种电荷转移配合物,可以直接电沉积在光刻图案的交错三角形尖端电极上,并作为一种化学电阻气体传感器,通过电荷相互作用响应氨气。传感器的性能可以使用电化学技术精确控制,允许在不同浓度范围内定制灵敏度。为了增强该技术的实际应用,通过将CuTCNQ气体传感器与柔性印刷电路板集成,开发了一种基于近场通信的柔性无源标签。该设备可以按需分析氨浓度,并通过手机扫描无电池和无线操作。这种功能对于可穿戴设备或工业设备至关重要,并且符合对强大的环境监测解决方案日益增长的需求。这一方法是在通过可获得和高效的气体传感技术改善人类健康和环境保护方面向前迈出的重要一步。
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