TY - JOUR
T1 - From industrially weavable and knittable highly conductive yarns to large wearable energy storage textiles
AU - Huang, Yan
AU - Hu, Hong
AU - Zhu, Minshen
AU - Meng, Wenjun
AU - Liu, Chang
AU - Pei, Zengxia
AU - Hao, Chonglei
AU - Wang, Zuankai
AU - Zhi, Chunyi
PY - 2015/5/26
Y1 - 2015/5/26
N2 - Wearable electronic textiles that store capacitive energy are a next frontier in personalized electronics. However, the lack of industrially weavable and knittable conductive yarns in conjunction with high capacitance, limits the wide-scale application of such textiles. Here pristine soft conductive yarns are continuously produced by a scalable method with the use of twist-bundle-drawing technique, and are mechanically robust enough to be knitted to a cloth by a commercial cloth knitting machine. Subsequently, the reduced-graphene-oxide-modified conductive yarns covered with a hierarchical structure of MnO2 nanosheets and a polypyrrole thin film were used to fabricate weavable, knittable and wearable yarn supercapacitors. The resultant modified yarns exhibit specific capacitances as high as 36.6 mF cm-1 and 486 mF cm-2 in aqueous electrolyte (three-electrode cell) or 31 mF cm-1 and 411 mF cm-2 in all solid-state two-electrode cell. The symmetric solid-state supercapacitor has high energy densities of 0.0092 mWh cm-2 and 1.1 mWh cm-3 (both normalized to the whole device) with a long cycle life. Large energy storage textiles are fabricated by weaving our flexible all-solid-state supercapacitor yarns to a 15 cm × 10 cm cloth on a loom and knitting in a woollen wrist band to form a pattern, enabling dual functionalities of energy storage capability and wearability.
AB - Wearable electronic textiles that store capacitive energy are a next frontier in personalized electronics. However, the lack of industrially weavable and knittable conductive yarns in conjunction with high capacitance, limits the wide-scale application of such textiles. Here pristine soft conductive yarns are continuously produced by a scalable method with the use of twist-bundle-drawing technique, and are mechanically robust enough to be knitted to a cloth by a commercial cloth knitting machine. Subsequently, the reduced-graphene-oxide-modified conductive yarns covered with a hierarchical structure of MnO2 nanosheets and a polypyrrole thin film were used to fabricate weavable, knittable and wearable yarn supercapacitors. The resultant modified yarns exhibit specific capacitances as high as 36.6 mF cm-1 and 486 mF cm-2 in aqueous electrolyte (three-electrode cell) or 31 mF cm-1 and 411 mF cm-2 in all solid-state two-electrode cell. The symmetric solid-state supercapacitor has high energy densities of 0.0092 mWh cm-2 and 1.1 mWh cm-3 (both normalized to the whole device) with a long cycle life. Large energy storage textiles are fabricated by weaving our flexible all-solid-state supercapacitor yarns to a 15 cm × 10 cm cloth on a loom and knitting in a woollen wrist band to form a pattern, enabling dual functionalities of energy storage capability and wearability.
KW - energy storage textiles
KW - knittability
KW - wearability
KW - weavability
KW - yarn supercapacitors
UR - http://www.scopus.com/inward/record.url?scp=84930226229&partnerID=8YFLogxK
UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-84930226229&origin=recordpage
U2 - 10.1021/acsnano.5b00860
DO - 10.1021/acsnano.5b00860
M3 - RGC 21 - Publication in refereed journal
SN - 1936-0851
VL - 9
SP - 4766
EP - 4775
JO - ACS Nano
JF - ACS Nano
IS - 5
ER -