Textile, as the most commonly used item in people's daily life, is the ideal substrate for carrying wear-able devices. However, it is difficult to form robust con-ductive patterns on fabric substrates due to the roughness and porousness of fabric fiber. Here, we used heat trans-fer printing technology for simple modification of fabric substrate, which reduces the surface roughness of textile substrate. A pure carbon based wearable electronic textile (e-textile) with high conductivity (9.82 O /sq) and durability (1000 cycles) was obtained by depositing the mixed ink of graphene and carbon nanotubes through screen printing process and combining with roller pressing process. The sensor can well reflect the different bending degrees of fingers and work well in waterproof situations. In addi-tion, five sensors were integrated into the fabric glove. The fabricated smart fabric glove combined with machine learning can recognize 8 different gestures with the average accuracy of 96.58%.
机构:
Korea Carbon Ind Promot Agcy, Convergence Res Div, 110-11 Banryong Ro, Jeonju 54853, South Korea
Korea Adv Inst Sci & Technol, Dept Civil & Environm Engn, 291 Daehak Ro, Daejeon 34141, South KoreaKorea Carbon Ind Promot Agcy, Convergence Res Div, 110-11 Banryong Ro, Jeonju 54853, South Korea