三甲基硅烷等离子纳米涂层银纳米线提高稳定性

Materials Pub Date : 2024-07-23 DOI:10.3390/ma17153635
Yixuan Liao, Ganggang Zhao, Yun Ling, Zheng Yan, Qingsong Yu
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摘要

本研究的目的是评估三甲基硅烷(TMS)等离子纳米涂层在保护银纳米线(AgNWs)免于降解方面的有效性,从而提高其稳定性。在玻璃、多孔苯乙烯-乙烯-丁二烯-苯乙烯(SEBS)和聚左旋乳酸(PLLA)等三种不同基底上制备的银纳米线上沉积了不同厚度的 TMS 等离子纳米涂层。实验结果表明,在 AgNW 上涂覆 TMS 等离子纳米涂层后,AgNW 的电阻值几乎没有增加,最多增加了约 25%,但却有效地防止了 AgNW 的降解。在夏季(20-22 °C,55-70% 相对湿度)储存两个月期间,SEBS 上涂覆的 AgNW 电阻仅增加了约 90%,而未涂覆的 AgNW 电阻则大幅增加了约 700%。在玻璃上,涂层 AgNW 的电阻增加了约 30%,而未涂层 AgNW 的电阻增加了约 190%。在 37 °C 磷酸盐缓冲盐水(PBS)溶液中储存 2 个月后,玻璃上的镀膜 AgNW 电阻增加了约 130%,而未镀膜的 AgNW 电阻增加了约 970%。增加 TMS 等离子纳米涂层的厚度可进一步提高 AgNWs 的导电稳定性。纳米涂层还将 AgNWs 的表面从亲水性转变为疏水性,而不会明显影响其光学透明度。这些发现证明了 TMS 等离子纳米涂层在保护 AgNWs 免受环境和水降解、保持其导电性以及适用于透明电极和可穿戴电子设备方面的潜力。
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Trimethylsilane Plasma-Nanocoated Silver Nanowires for Improved Stability
The objective of this study was to evaluate the effectiveness of trimethylsilane (TMS) plasma nanocoatings in protecting silver nanowires (AgNWs) from degradation and thus to improve their stability. TMS plasma nanocoatings at various thicknesses were deposited onto AgNWs that were prepared on three different substrates, including glass, porous styrene-ethylene-butadiene-styrene (SEBS), and poly-L-lactic acid (PLLA). The experimental results showed that the application of TMS plasma nanocoatings to AgNWs induced little increase, up to ~25%, in their electrical resistance but effectively protected them from degradation. Over a two-month storage period in summer (20–22 °C, 55–70% RH), the resistance of the coated AgNWs on SEBS increased by only ~90%, compared to a substantial increase of ~700% for the uncoated AgNWs. On glass, the resistance of the coated AgNWs increased by ~30%, versus ~190% for the uncoated ones. When stored in a 37 °C phosphate-buffered saline (PBS) solution for 2 months, the resistance of the coated AgNWs on glass increased by ~130%, while the uncoated AgNWs saw a ~970% rise. Increasing the TMS plasma nanocoating thickness further improved the conductivity stability of the AgNWs. The nanocoatings also transformed the AgNWs’ surfaces from hydrophilic to hydrophobic without significantly affecting their optical transparency. These findings demonstrate the potential of TMS plasma nanocoatings in protecting AgNWs from environmental and aqueous degradation, preserving their electrical conductivity and suitability for use in transparent electrodes and wearable electronics.
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