Kim Sanghyeok, Park Jaeho, Lee Jinjae, Kim Jae-Hyun, Ryu Seunghwa, Park Inkyu
Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology (KAIST), 291 Daehak-ro, Yuseong-gu, Daejeon 34141, Republic of Korea.
Department of Nanomechanics, Nano-Convergence Mechanical Systems Research Division, Korea Institute of Machinery & Materials (KIMM), Daejeon, Republic of Korea.
Nanotechnology. 2021 Jan 29;32(5):055701. doi: 10.1088/1361-6528/aba86b.
The robust and reliable mechanical characteristics of metal nanoparticle (NP) thin films on flexible substrates are important because they operate under tensile, bending, and twisting loads. Furthermore, in wearable printed electronics applications, salty solutions such as sweat and seawater can affect the mechanical reliabilities of devices. In this paper, we investigated the effect of sodium chloride (NaCl) solutions on silver (Ag) NP thin films on flexible polymer substrate. After exposure to NaCl solution of Ag NP thin film, we observed the aggregation behavior between Ag NPs and formation of larger pores in the film due to the removal of organic capping layer from the surface of Ag NPs. The average porosity and 5% deviation strains of Ag NP thin films on the polyimide substrate were dramatically increased and decreased from 2.99% to 9.64% and from 3.94% to 0.87%, respectively, after exposure to NaCl solution for 1 h. Also, we verified a drastic deterioration of the surface adhesion of the Ag NP thin film to the substrate by exposure to NaCl solution. We could observe crack propagation and delamination by in-situ scanning electron microscope imaging. In addition, passivation effect by a parylene layer for preventing the permeation of the saline solution was investigated.
柔性基板上金属纳米颗粒(NP)薄膜强大且可靠的机械特性非常重要,因为它们在拉伸、弯曲和扭转载荷下工作。此外,在可穿戴印刷电子应用中,诸如汗液和海水等含盐溶液会影响设备的机械可靠性。在本文中,我们研究了氯化钠(NaCl)溶液对柔性聚合物基板上银(Ag)NP薄膜的影响。将Ag NP薄膜暴露于NaCl溶液后,我们观察到Ag NPs之间的聚集行为以及由于Ag NPs表面有机封端层的去除导致薄膜中形成更大的孔隙。在聚酰亚胺基板上的Ag NP薄膜暴露于NaCl溶液1小时后,其平均孔隙率和5%偏差应变分别从2.99%急剧增加到9.64%,从3.94%急剧下降到0.87%。此外,我们通过将Ag NP薄膜暴露于NaCl溶液验证了其与基板表面附着力的急剧恶化。通过原位扫描电子显微镜成像,我们可以观察到裂纹扩展和分层。此外,还研究了聚对二甲苯层对防止盐溶液渗透的钝化作用。