Skip to main navigation Skip to search Skip to main content

Ag nanowires–ZnO composite structures for multifunctional flexible transparent conductive films with enhanced photoelectric performance

  • Haoshen Bai
  • , Liyan Chen
  • , Wenxin Jiao
  • , Ganghua Zhang
  • , Demei Kong
  • , Dezeng Li*
  • *Corresponding author for this work
  • East China Normal University
  • Shanghai Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Silver nanowires (AgNWs) are regarded as a new generation of photoelectric material for transparent conductive films (TCFs) to replace indium tin oxide (ITO), on account of their superior conductivity, flexibility and stability. However, challenges still remain in the applications of AgNW-based TCFs to realize a combined enhancement of both transmission and conductivity. Herein, three types of AgNWs–ZnO composite TCFs were specifically designed to improve photoelectric properties. Through employing structurally controllable ZnO modifications on AgNWs, the contact architecture between AgNWs was optimized, enhancing optical performance and electron transport within the network. The results show that: (1) AgNWs/ZnO (Type-Ⅰ) with AgNWs deposited on a ZnO-nanoparticle (NP) film reaches a sheet resistance of 27.6 Ω·sq−1 at a transmittance of 90.68%; (2) AgNWs@ZnO (Type-Ⅱ) with AgNWs encapsulated by ZnO NPs reaches 20.6 Ω·sq−1 at 87.59%; (3) AgNWs⊥ZnO (Type-Ⅲ) with AgNWs integrated with ZnO nanotrees (NTs) achieves 44.0 Ω·sq−1 at 89.60%. Furthermore, Type-Ⅰ TCFs show excellent photocatalysis, interfacial hydrophilicity, and flexibility. The comprehensive multifunctionality of AgNWs–ZnO composite TCFs proves the great potential for their development.

Original languageEnglish
Pages (from-to)15860-15875
Number of pages16
JournalJournal of Materials Science
Volume61
Issue number22
DOIs
StatePublished - Jun 2026

Fingerprint

Dive into the research topics of 'Ag nanowires–ZnO composite structures for multifunctional flexible transparent conductive films with enhanced photoelectric performance'. Together they form a unique fingerprint.

Cite this