Nano-percolation engineering of carbon nanotube films for ultra-high transmittance exceeding 99 %
- Authors
- Park, Jae Seo; Park, Ji Yong; Jang, Da Hee; Kim, Jung Sub; Choi, Minseouk; Kang, Yosub; Kang, Ji Won; Kim, Dong Kyum; Lee, Yongjin; Cho, Young Shik; Kim, Jae Ho; Kim, Taehoon; Yang, Seung Jae
- Issue Date
- 2026-01
- Publisher
- Elsevier BV
- Citation
- Chemical Engineering Journal, v.528
- Abstract
- Flexible and transparent electrodes (FTEs) are fundamental to the advancement of next-generation wearable electronics. Carbon nanotube (CNT)-based transparent films have emerged as compelling alternatives to conventional indium tin oxide (ITO)-based electrodes, owing to their superior optoelectronic properties, exceptional physicochemical stability, and remarkable mechanical flexibility. However, achieving high optical transmittance (T) while preserving electrical conductivity and scalability remains a formidable challenge. Here, we present a novel nano-percolation strategy to integrate high transparency with strong network connectivity in aerogels using a minimal amount of CNTs. Temperature-induced percolation enables the creation of resilient aerogel networks, even at unprecedentedly low CNT concentrations. This approach leads to the fabrication of FTEs exhibiting a T of up to 99.4 %, alongside unparalleled optoelectronic properties and scalability for large-scale production. The CNT films combine high functionality with transparency, making them ideal for a range of advanced applications.
- Keywords
- HIGH-PERFORMANCE; TRANSPARENT ELECTRODES; SINGLE-WALL; GRAPHENE; CONDUCTIVITY; Carbon nanotubes; Transparent conductive films; Nano-percolation engineering; Floating catalyst vapor deposition; Large-scale production
- ISSN
- 1385-8947
- URI
- https://pubs.kist.re.kr/handle/201004/154197
- DOI
- 10.1016/j.cej.2025.172247
- Appears in Collections:
- KIST Article > 2026
- Export
- RIS (EndNote)
- XLS (Excel)
- XML
Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.