Advanced n-type ionic hydrogel with simultaneously enhanced thermoelectric and mechanical performances via the synergy of hydrophilic and hydrophobic polymers
Qiaoman Hu, Yang Pan, Lu Li, Yangming Feng, Gang Wang, Shiyu Liu, Jiang Cheng, Hong Wu, Shaoyun Guo, Kangming Xu
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引用次数: 0
Abstract
Ionic thermoelectric (i-TE) gels are considered as promising candidates for wearable electronics due to their green, flexibility and directly converting low-grade waste heat into electricity. However, the comprehensive performance of n-type reported so far lags far behind p-type owing to multiple conflicts among negative thermopower, ionic conductivity, strength, and toughness, hindering large-scale applications. Here, based on the good biocompatibility of polyvinyl alcohol (PVA) and poly (thioctic acid) (PTA), a bio-inspired design of hydrophilic-hydrophobic dual network structure is developed for the first time to enhance the TE and mechanical properties simultaneously. The PTA forms stable coordination interaction with cations, while the PVA provides sufficient paths for anions, as well as the dual network structure contributes to the mechanical properties. With the synergy of hydrophilic PVA and hydrophobic PTA, the optimized ionic hydrogel exhibits giant negative thermopower (-16.68 mV K -1 ), excellent ionic conductivity (1.084 S m -1 ), low thermal conductivity (0.36 W m -1 K -1 ), high tensile strength (>4 MPa), huge elongation at break (>1300%), superb toughness (>31 MJ m -3 ) at ambient environment, representing the best research until now on n-type i-TE gels with such excellent TE and mechanical properties, comparable to the state-of-the-art p-type. Besides, the i-TE hydrogel also presents application potentials in temperature sensors and thermoelectric generators. This work creates a new milestone in advanced n-type i-TE gels by the synergy of various polymer-ion interactions.
离子热电(i-TE)凝胶被认为是可穿戴电子产品的有前途的候选者,因为它们绿色,灵活,直接将低品位的废热转化为电能。然而,目前报道的n型材料由于负热功率、离子电导率、强度和韧性之间的多重冲突,综合性能远远落后于p型材料,阻碍了大规模应用。本文基于聚乙烯醇(PVA)和聚硫辛酸(PTA)良好的生物相容性,首次设计了一种亲疏水双网络结构的仿生设计,以同时提高材料的TE和力学性能。PTA与阳离子形成稳定的配位相互作用,而PVA为阴离子提供了充足的通道,双网络结构有助于提高力学性能。在亲水性PVA和疏水性PTA的协同作用下,优化后的离子水凝胶表现出巨大的负热功率(-16.68 mV K -1)、优异的离子电导率(1.084 S m -1)、低的导热系数(0.36 W m -1 K -1)、高的抗拉强度(> 4mpa)、巨大的断裂伸长率(>1300%)、优异的环境韧性(>31 MJ m -3),是迄今为止对具有如此优异的TE和力学性能的n型i-TE凝胶的最好研究。堪比最先进的p型。此外,i-TE水凝胶在温度传感器和热电发电机方面也具有应用潜力。这项工作通过各种聚合离子相互作用的协同作用,为先进的n型i-TE凝胶创造了新的里程碑。
期刊介绍:
The Journal of Materials Chemistry A, B & C covers a wide range of high-quality studies in the field of materials chemistry, with each section focusing on specific applications of the materials studied. Journal of Materials Chemistry A emphasizes applications in energy and sustainability, including topics such as artificial photosynthesis, batteries, and fuel cells. Journal of Materials Chemistry B focuses on applications in biology and medicine, while Journal of Materials Chemistry C covers applications in optical, magnetic, and electronic devices. Example topic areas within the scope of Journal of Materials Chemistry A include catalysis, green/sustainable materials, sensors, and water treatment, among others.