TY - JOUR
T1 - Liquid metal-based flexible and wearable thermoelectric cooling structure and cooling performance optimization
AU - Yang, Mingkun
AU - Li, Guanqi
AU - Gu, Yue
AU - Song, Jiaqi
AU - Li, Hong
AU - Zhao, Xiuchen
AU - Huo, Yongjun
N1 - Publisher Copyright:
© 2023, Science China Press.
PY - 2023/10
Y1 - 2023/10
N2 - Soft wearable cooling devices using flexible thermoelectric coolers (TECs) are highly advantageous for diverse applications. However, challenges remain in low cooling capacity, short device lifetime, and limited understandings of the impact of thermoelectric component’s dimension, structure and density on their cooling capacity. Here, we addressed these issues by engineering a large-electrode flexible TEC composed of thermoelectric components embedded in a three-layer polydimethylsiloxane (PDMS) matrix interconnected with biphasic liquid metal traces (core-shell structured liquid metal nanoparticles and nickel-doped GaIn). Attributed to the larger electrodes and three-layer PDMS, the TECs significantly reduce the amount of liquid metal used, minimize the risk of leakage, lower the cost, eliminate environmental pollution, and improve product reliability and manufacturing efficiency. We further optimized the TEC structure design by finite element analysis, providing a generic TEC design kit taking into account multiple physical fields and impact factors. The demonstrated TECs offer high cooling capacity (7.4°C) and great performance stability under deformation, which outperform previously reported models that use similar materials and structures. This work represents a significant step forward in the development of flexible TECs, with promising applications in fields such as wearable devices, electronic skins, and smart textiles.[Figure not available: see fulltext.]
AB - Soft wearable cooling devices using flexible thermoelectric coolers (TECs) are highly advantageous for diverse applications. However, challenges remain in low cooling capacity, short device lifetime, and limited understandings of the impact of thermoelectric component’s dimension, structure and density on their cooling capacity. Here, we addressed these issues by engineering a large-electrode flexible TEC composed of thermoelectric components embedded in a three-layer polydimethylsiloxane (PDMS) matrix interconnected with biphasic liquid metal traces (core-shell structured liquid metal nanoparticles and nickel-doped GaIn). Attributed to the larger electrodes and three-layer PDMS, the TECs significantly reduce the amount of liquid metal used, minimize the risk of leakage, lower the cost, eliminate environmental pollution, and improve product reliability and manufacturing efficiency. We further optimized the TEC structure design by finite element analysis, providing a generic TEC design kit taking into account multiple physical fields and impact factors. The demonstrated TECs offer high cooling capacity (7.4°C) and great performance stability under deformation, which outperform previously reported models that use similar materials and structures. This work represents a significant step forward in the development of flexible TECs, with promising applications in fields such as wearable devices, electronic skins, and smart textiles.[Figure not available: see fulltext.]
KW - body temperature regulation
KW - flexible thermoelectric cooler
KW - liquid metal nanoparticles
KW - nickel-doped liquid metal
KW - structure optimization
UR - http://www.scopus.com/inward/record.url?scp=85172478465&partnerID=8YFLogxK
U2 - 10.1007/s40843-023-2607-3
DO - 10.1007/s40843-023-2607-3
M3 - Article
AN - SCOPUS:85172478465
SN - 2095-8226
VL - 66
SP - 4001
EP - 4011
JO - Science China Materials
JF - Science China Materials
IS - 10
ER -