| Literature DB >> 32319296 |
Shirui Pu1, Yutian Liao1, Kyle Chen2, Jia Fu1, Songlin Zhang2, Lurong Ge1, Giorgio Conta2, Sofia Bouzarif2, Ting Cheng1, Xuejiao Hu1, Kang Liu1, Jun Chen2.
Abstract
Efficient heat removal and recovery are two conflicting processes that are difficult to achieve simultaneously. Here, in this work, we pave a new way to achieve this through the use of a smart thermogalvanic hydrogel film, in which the ions and water undergo two separate thermodynamic cycles: thermogalvanic reaction and water-to-vapor phase transition. When the hydrogel is attached to a heat source, it can achieve efficient evaporative cooling while simultaneously converting a portion of the waste heat into electricity. Moreover, the hydrogel can absorb water from the surrounding air to regenerate its water content later on. This reversibility can be finely designed. As an applicative demonstration, the hydrogel film with a thickness of 2 mm was attached to a cell phone battery while operating. It successfully decreased the temperature of the battery by 20 °C and retrieved electricity of 5 μW at the discharging rate of 2.2 C.Entities:
Keywords: Battery; Energy harvesting; Evaporative cooling; Hydrogel; Low-grade heat
Year: 2020 PMID: 32319296 DOI: 10.1021/acs.nanolett.0c00800
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189