Li Niansi, Wei Wei, Li Yulin, Xu Feiyang, Zhang Guoyu, Ji Jie, Zhao Xudong, Liu Junwei, Yu Bendong, Wang Qiliang
College of Urban Construction, Nanjing Tech University, Nanjing, Jiangsu, 210009, China.
Department of Thermal Science and Energy Engineering, University of Science and Technology of China, Hefei, China, 230026.
Adv Sci (Weinh). 2025 Sep;12(34):e05059. doi: 10.1002/advs.202505059. Epub 2025 Jun 20.
Solar photothermal catalytic (PTC) purification holds great potential for indoor air pollution control, but efficiently collecting energy at the catalytic interface to maximize solar energy utilization and meet building requirements remains a global challenge. This study develops a novel infrared-light-driven photothermal catalyst, MnCoCeO, which efficiently utilizes solar and ambient energy, offering three functions: catalysis, heating, and cooling. Furthermore, this study proposes an innovative hybrid system that integrates PTC film, thermoelectric generator (TEG), and metal-organic frameworks (MOFs). Through synergetic effects, the system combines the heating-catalysis-cooling effect of the PTC film with the moisture-induced adsorption/desorption heat of the MOFs, achieving year-round power generation, dehumidification, and air purification. Results show that MnCoCeO has a full-spectrum solar absorptivity of 94.3% and an atmospheric window emissivity of 95.7%. Under infrared light, the pollutant removal rate on the photothermal catalytic interface reaches 90.9%. Within 4 h, the thermoelectric power density increased by 640.1%, the relative humidity decreased by 16.8%, and the clean air volume reached 270.8 m·h·m. When the system is applied to building rooftops in 34 provincial capital cities in China, the simulation results show annual power density of 30-105.3 kW·m⁻, air conditioning energy savings of 11.2-353.5 kW·m, and clean air volume of 296.3-1119.3 m·h·m.
太阳能光热催化(PTC)净化在室内空气污染控制方面具有巨大潜力,但在催化界面高效收集能量以最大化太阳能利用并满足建筑需求仍是一项全球性挑战。本研究开发了一种新型红外光驱动的光热催化剂MnCoCeO,其能有效利用太阳能和环境能量,具备催化、加热和冷却三种功能。此外,本研究提出了一种创新的混合系统,该系统集成了PTC薄膜、热电发电机(TEG)和金属有机框架(MOF)。通过协同效应,该系统将PTC薄膜的加热 - 催化 - 冷却效应与MOF的湿度诱导吸附/解吸热相结合,实现全年发电、除湿和空气净化。结果表明,MnCoCeO的全光谱太阳能吸收率为94.3%,大气窗口发射率为95.7%。在红外光下,光热催化界面的污染物去除率达到90.9%。4小时内,热电功率密度提高了640.1%,相对湿度降低了16.8%,洁净空气量达到270.8 m·h·m。当该系统应用于中国34个省会城市的建筑屋顶时,模拟结果显示年功率密度为30 - 105.3 kW·m⁻,空调节能11.2 - 353.5 kW·m,洁净空气量为296.3 - 1119.3 m·h·m。