Mingxiao Zhai, Jiajun An, Changkang Du, Yanru Yang, Congliang Huang, Xiaodong Wang
Under concentrated sunlight with a high operation temperature (>100 °C), the enthalpy reduction performance of interfacial materials still remains largely unexplored, which is crucial for future large-scale industrial seawater desalination. Here, an interfacial material that can reduce the evaporation enthalpy under high solar concentration was developed by chemically grafting cyclodextrin (CD) onto porous MnO 2 (β-CD-MnO 2 ). Experiments demonstrate a 31.5% reduction in the evaporation enthalpy in the β-CD-MnO 2 system, which has an evaporation rate of 1.76 kg·m –2 ·h –1 . Our molecular dynamic simulations reveal that the enthalpy reduction arrives from the existence of water-cluster evaporation promoted by the intermediate water. The large existence of intermediate water content in β-CD-MnO 2, which was observed in REMAN measurements, is attributed to the heterostructures, the silane linker, and the ring structure of cyclodextrin in β-CD-MnO 2 . Both outdoor experiments and concentrated solar experiments (13 suns) demonstrate that the β-CD-MnO 2 evaporator could realize highly efficient interfacial evaporation with stable enthalpy reduction characteristics.