Affiliation:
1. School of Materials Science and Engineering Yeungnam University Gyeongsan Gyeongbuk 38541 Republic of Korea
2. Department of Materials Science and Engineering Pusan National University Geumjeong‐gu Busan 46241 Republic of Korea
3. Center for Core Research Facilities Daegu Gyeongbuk Institute of Science & Technology (DGIST) Sang‐ri, Hyeonpung‐myeon Dalseong‐gun Daegu 711‐873 Republic of Korea
4. Graduate School of Semiconductor Materials and Devices Engineering Ulsan National Institute of Science and Technology (UNIST) Ulju‐gun Ulsan 44919 Republic of Korea
Abstract
AbstractIn searching for unique and unexplored 2D materials, the authors try to investigate for the very first time the use of delaminated V‐MXene coupled with precious metal ruthenium (Ru) through atomic layer deposition (ALD) for various contact and noncontact mode of real‐time temperature sensing applications at the human–machine interface. The novel delaminated V‐MXene (DM‐V2CTx) engineered ruthenium‐ALD (Ru‐ALD) temperature sensor demonstrates a competitive sensing performance of 1.11% °C−1 as of only V‐MXene of 0.42% °C−1. A nearly threefold increase in sensing and reversibility performance linked to the highly ordered few‐layered V‐MXene and selective, well‐controlled Ru atomic doping by ALD for the successful formation of Ru@DM‐V2CTX heterostructure. The advanced heterostructure formation, the mechanism, and the role of Ru have been comprehensively investigated by ultra‐high‐resolution transmission/scanning transmission electron microscopies coupled with next‐generation spherical aberration correction technology and fast, accurate elemental mapping quantifications, also by ultraviolet photoelectron spectroscopy. To the knowledge, this work is the first to use the novel, optimally processed V‐MXene over conventionally used Ti‐MXene and its surface‐internal structure engineering by Ru‐ALD process‐based temperature‐sensing devices function and operational demonstrations. The current work could potentially motivate the development of multifunctional, future, next‐generation, safe, personal healthcare electronic devices by the industrially scalable ALD technique.
Funder
National Research Foundation of Korea
Subject
General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)
Cited by
15 articles.
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