4.8 Article

Mildly Peeling Off and Encapsulating Large MXene Nanosheets with Rigid Biologic Fibrils for Synchronization of Solar Evaporation and Energy Harvest

Journal

ACS NANO
Volume 16, Issue 6, Pages 8881-8890

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.1c10836

Keywords

biohybrid nanomaterials; solar evaporation; environmental electricity harvest; MXene; biologic nanofibrils

Funding

  1. National Natural Science Foundation of China [22075307, 21474125]
  2. China Scholarship Council [201706330109]
  3. Shandong Taishan Youth Scholoar Program - Shandong Provincial Natural Science Foundation [ZR2021YQ40, ZR2020ZD33, ZR2020KE025]
  4. Dalian National Laboratory for Clean Energy (DNL), CAS [QIBEBT I201916]
  5. Shandong Energy Institute [SEI I202131, SEI I202143]
  6. QIBEBT, CAS [QIBEBT I201916]

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Combining rigid biological nanofibrils and mild manual shake, an efficient and nondestructive method of liquid exfoliation was developed for obtaining large lateral size MXene nanosheets. The resulting MXene nanosheets exhibited high yield, excellent chemical stability, and wide applications in solar-thermal evaporation and energy harvest.
Efficient and nondestructive liquid exfoliation of MXene with large lateral size has drawn growing research interest due to its outstanding properties and diverse potential applications. The conventional sonication method, though enabling a high production yield of MXene nanosheets, broke them down into submicrometric sizes or even quantum dots, and thus sacrificed their size-dependent properties, chemical stability, and wide applications. Herein, rigid biological nanofibrils in combination of mild manual shake were found to be capable of peeling off MXene nanosheets by attaching on MXene surfaces and localizing the shear force. With comparison to sonication, this efficient and nondestructive exfoliation approach produced the MXene nanosheets with the lateral size up to 4-6 mu m and a comparable yield of 64% within 2 h. The resultant MXene nanosheets were encapsulated with these biological fibrils, and thus enabled super colloidal and chemical stability. A steam generation efficiency of similar to 86% and a high evaporation rate of 3.3 kg m(-2) h(-1) were achieved on their aerogels under 1-Sun irradiation at similar to 25 degrees C. An evaporation rate of 0.5 kg m(-2) h(-1) still maintained even at the atmospheric temperature of -5 degrees C. More importantly, an electricity generation up to similar to 350 mV also accompanied this solar evaporation under equivalent 5-Sun irradiation. Thus, this fibrous strategy not only provides an efficient and nondestructive exfoliation method of MXene, but also promises synchronization of solar-thermal evaporation and energy harvest.

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