A Universal Design Strategy Based on NiPS3 Nanosheets towards Efficient Photothermal Conversion and Solar Desalination

Author:

Wang Honglei1,Bo Yifan2,Klingenhof Malte3,Peng Jiali4,Wang Dong1ORCID,Wu Bing5,Pezoldt Jörg6,Cheng Pengfei1,Knauer Andrea7,Hua Weibo48,Wang Hongguang9,van Aken Peter A.9,Sofer Zdenek5,Strasser Peter3,Guldi Dirk M.2,Schaaf Peter1

Affiliation:

1. Chair Materials for Electrical Engineering and Electronics Institute of Materials Science and Engineering and Institute of Micro and Nanotechnologies MacroNano TU Ilmenau Gustav‐Kirchhoff‐Str. 5 98693 Ilmenau Germany

2. Department of Chemistry and Pharmacy Interdisciplinary Center for Molecular Materials Friedrich‐Alexander‐Universität (FAU) Erlangen‐Nürnberg Egerlandstraße 3 91058 Erlangen Germany

3. The Electrochemical Energy, Catalysis and Materials Science Laboratory Department of Chemistry Chemical Engineering Division Technical University Berlin 10623 Berlin Germany

4. Institute for Applied Materials (IAM) Karlsruhe Institute of Technology Hermann‐von‐Helmholtz‐Platz 1 76344 Eggenstein‐Leopoldshafen Germany

5. Department of Inorganic Chemistry University of Chemistry and Technology Prague Technická 5 Prague 6 166 28 Czech Republic

6. Fachgebiet Nanotechnologie Institut für Mikro und Nanotechnologie TU Ilmenau Gustav‐Kirchhoff‐Str. 1 98693 Ilmenau Germany

7. Institute of Micro‐ and Nanotechnologies MacroNano TU Ilmenau Gustav‐Kirchhoff‐ Str.7 D‐98693 Ilmenau Germany

8. School of Chemical Engineering and Technology Xi'an Jiaotong University Xi'an Shaanxi 710049 China

9. Max Planck Institute for Solid State Research Heisenbergstr. 1 70569 Stuttgart Germany

Abstract

Abstract2D nanomaterials are proposed as promising photothermal materials for interfacial photothermal water evaporation. However, low evaporation efficiency, the use of hazardous hydrofluoric solution, and poor stability severely limit their practical applications. Here, a mixed solvent exfoliation surface deposition (MSESD) strategy for the preparation of NiPS3 nanosheets and NiPS3/polyvinyl alcohol (PVA) converter is successfully developed. The converter is obtained by drop‐casting the NiPS3/PVA nanosheets onto a sponge. The PVA is mainly deposited on the edge of NiPS3 nanosheets, which not only improves the stability of NiPS3 nanosheets, but also adheres to the sponge to prepare a 3D photothermal converter, which shows an evaporation rate of 1.48 kg m−2 h−1 and the average photothermal conversion efficiency (PTCE) of 93.5% under a light intensity of 1 kW m−2. The photothermal conversion mechanism reveals that the energy of absorbed photons in NiPS3 nanosheets can be effectively converted into heat through non‐radiative photon transitions as well as multiple optical interactions. To the best of the knowledge, this is the first report on the application of 2D metal‐phosphorus‐chalcogen (MPChx) for solar desalination, which provides new insights and guidance for the development of high‐performance 2D photothermal materials.

Funder

China Scholarship Council

Horizon 2020 Framework Programme

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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