State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Chemistry and Chemical Engineering, Center for Advanced Low-Dimension Materials, Donghua University, Shanghai, 201620, China.
John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA, 02138, USA.
Adv Sci (Weinh). 2023 Jun;10(18):e2300253. doi: 10.1002/advs.202300253. Epub 2023 Apr 21.
Converting building and environment heat into electricity is a promising strategy for energy harvest to tackle global energy and environmental problems. The processing challenges, mechanical brittleness, and low environmental tolerance of typical thermoelectric materials, however, prevent them from realizing their full potential when employed in outdoor building systems. Herein, a general concept based on synergistic ionic associations to significantly improve the mechanical properties and harsh environment stability for high-performance ionic-type thermoelectric (i-TE) gels is explored. They demonstrate extraordinarily high stretchability (1300-2100%), fast self-healing (120 s), temperature insensitivity, and great water-proof performance, and could be painted on a variety of surfaces. The n-type ionic Seebeck coefficient is up to -8.8 mV K and the ionic conductivity is more than 0.14 mS cm . Both exhibit remarkable thermal and humidity stability (293-333 K, 20-100 RH%), which are rarely achieved in previous studies. Even on a cloudy day, the open-circuit thermovoltage for a painted i-TE array with an area of about 8.5 × 10 m is above 2 V. This research offers a promising approach for gathering significant waste heat and even solar energy on outside building surfaces in an effective and sustainable manner.
将建筑和环境热能转化为电能是一种很有前途的能源收集策略,可以解决全球能源和环境问题。然而,典型的热电材料在处理方面的挑战、机械脆性以及对环境的低耐受性,限制了它们在户外建筑系统中的充分应用。在此,提出了一种基于协同离子缔合的通用概念,以显著提高高性能离子型热电(i-TE)凝胶的机械性能和恶劣环境稳定性。这些凝胶具有极高的拉伸性(1300-2100%)、快速自修复(120 秒)、对温度不敏感以及出色的防水性能,并且可以涂覆在各种表面上。n 型离子 Seebeck 系数高达-8.8 mV K,离子电导率超过 0.14 mS cm。这两种性能都表现出显著的热和湿度稳定性(293-333 K,20-100 RH%),这在以前的研究中很少实现。即使在阴天,面积约为 8.5×10 m 的涂覆 i-TE 阵列的开路热电电压也高于 2 V。这项研究为在户外建筑表面有效且可持续地收集大量余热甚至太阳能提供了一种很有前途的方法。