Polat Genlik Sevim, Tigan Dogancan, Kocak Yusuf, Ercan Kerem Emre, Cicek Melih Ogeday, Tunca Sensu, Koylan Serkan, Coskun Sahin, Ozensoy Emrah, Unalan Husnu Emrah
Department of Materials Science and Engineering, Ohio State University, Columbus, Ohio 43210, United States.
Department of Metallurgical and Materials Engineering, Middle East Technical University, Ankara 06800, Turkey.
ACS Appl Mater Interfaces. 2020 Oct 7;12(40):45136-45144. doi: 10.1021/acsami.0c11729. Epub 2020 Sep 22.
Copper nanowires (Cu NWs) hold promise as they possess equivalent intrinsic electrical conductivity and optical transparency to silver nanowires (Ag NWs) and cost substantially less. However, poor resistance to oxidation is the historical challenge that has prevented the large-scale industrial utilization of Cu NWs. Here, we use benzotriazole (BTA), an organic corrosion inhibitor, to passivate Cu NW networks. The stability of BTA-passivated networks under various environmental conditions was monitored and compared to that of bare Cu NW control samples. BTA passivation greatly enhanced the stability of networks without deteriorating their optoelectronic performance. Moreover, to demonstrate their potential, BTA-passivated networks were successfully utilized in the fabrication of a flexible capacitive tactile sensor. This passivation strategy has a strong potential to pave the way for large-scale utilization of Cu NW networks in optoelectronic devices.
铜纳米线(Cu NWs)因其具有与银纳米线(Ag NWs)相当的固有电导率和光学透明度且成本低得多而颇具前景。然而,抗氧化性差一直是阻碍Cu NWs大规模工业应用的历史性挑战。在此,我们使用有机腐蚀抑制剂苯并三唑(BTA)对Cu NW网络进行钝化处理。监测了BTA钝化网络在各种环境条件下的稳定性,并与未处理的Cu NW对照样品进行了比较。BTA钝化极大地提高了网络的稳定性,同时并未使其光电性能恶化。此外,为了展示其潜力,BTA钝化网络已成功用于制造柔性电容式触觉传感器。这种钝化策略极有可能为Cu NW网络在光电器件中的大规模应用铺平道路。