纺织学报 ›› 2024, Vol. 45 ›› Issue (09): 137-145.doi: 10.13475/j.fzxb.20230603801
卢道坤1, 王仕飞2, 董倩1, 史纳蔓1, 李思琦1, 干露露1, 周爽1, 沙莎1, 张如全1, 罗磊1,2()
LU Daokun1, WANG Shifei2, DONG Qian1, SHI Naman1, LI Siqi1, GAN Lulu1, ZHOU Shuang1, SHA Sha1, ZHANG Ruquan1, LUO Lei1,2()
摘要:
为拓展二维碳化钛材料在智能纺织品中的应用,以纤维素非织造布为基材,将Ti3C2Tx和碳纳米管(CNTs)喷涂在纤维素非织造布上,制备出一种集传感、储能、热能转换于一体的多功能复合导电织物。借助扫描电子显微镜、X射线衍射仪及傅里叶变换红外光谱仪对Ti3C2Tx及其改性织物的表面形貌及结构进行表征。结果表明:Ti3C2Tx/CNTs/非织造布具有优异的电热和光热转化性能,在15 V电压下织物快速升温至115 ℃,且在室温(32 ℃)条件下,织物经阳光照射后表面快速升温至65 ℃;所制备的柔性半固态超级电容器,在电流密度为0.2 A/cm2下,最大面积比电容达到125 mF/cm2,即使在10 000次充放电循环后仍保持74%的电容;作为应变传感器时,表现出明显的负电阻变化和高灵敏度,能准确检测出手指弯曲、肘部弯曲、膝盖弯曲等人体动作。
中图分类号:
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