4.8 Article

Hierarchical Ti3C2Tx MXene/Ni Chain/ZnO Array Hybrid Nanostructures on Cotton Fabric for Durable Self-Cleaning and Enhanced Microwave Absorption

期刊

ACS NANO
卷 14, 期 7, 页码 8634-8645

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.0c03013

关键词

MXene; Ni chain; ZnO array; self-cleaning; microwave absorption

资金

  1. Excellent Young Scientist Foundation of NSFC [11522216]
  2. National Natural Science Foundation of China [11872087]
  3. Beijing Municipal Natural Science Foundation [2182033]
  4. Aeronautical Science Foundation of China [2016ZF51054]
  5. 111 Project [B14009]
  6. Project of the Science and Technology Commission of Military Commission [17-163-12-ZT-004-002-01]
  7. Foundation of Shock and Vibration of Engineering Materials and Structures Key Laboratory of Sichuan Province [18kfgk01]
  8. Foundation of State Key Laboratory for Strength and Vibration of Mechanical Structures [SV2019-KF-32]
  9. Fundamental Research Funds for the Central Universities [YWF-19-BJ-J-55]

向作者/读者索取更多资源

The increasing demand for wearable electronics and the intensification of electromagnetic pollution have boosted the exploration of high-performance flexible microwave absorption (MA) materials. Herein, the hierarchical Ti3C2Tx MXene/Ni chain/ZnO array hybrid nanostructures are rationally constructed on cotton fabric for acquiring enhanced MA performance and durable self-cleaning ability. Based on the high dielectric loss capacity of MXenes and ZnO arrays, by controlling dip-coating numbers of Ni chains, the magnetic loss can be manipulated to modulate the impedance matching, reflection loss (RL), and effective absorption bandwidth (EAB, the bandwidth of RL < -10 dB). The minimum RL value of the designed fabric can reach -35.1 dB at 8.3 GHz with a thickness of 2.8 mm, and its EAB can cover the whole X-band with only a 2.2 mm thickness. In addition, the designed fabric also exhibits superior liquid repellency and durable self-cleaning ability due to the combination of the hybrid nanostructures and a superhydrophobic coating. This work provides an insight for rational design of textile-based MA materials, showing potential applications in flexible and wearable functional electronics.

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