MAYORGA-BURREZO, P., J. MUNOZ, D. ZAORALOVA, M. OTYEPKA and M. PUMERA. Multiresponsive 2D Ti3C2Tx MXene via Implanting Molecular Properties. ACS Nano. WASHINGTON: American Chemical Society, 2021, vol. 15, No 6, p. 10067-10075. ISSN 1936-0851. Available from: https://dx.doi.org/10.1021/acsnano.1c01742.
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Basic information
Original name Multiresponsive 2D Ti3C2Tx MXene via Implanting Molecular Properties
Authors MAYORGA-BURREZO, P., J. MUNOZ, D. ZAORALOVA, M. OTYEPKA and M. PUMERA.
Edition ACS Nano, WASHINGTON, American Chemical Society, 2021, 1936-0851.
Other information
Original language English
Type of outcome Article in a journal
Field of Study 10400 1.4 Chemical sciences
Country of publisher United States of America
Confidentiality degree is not subject to a state or trade secret
WWW URL
Impact factor Impact factor: 18.027
RIV identification code RIV/00216224:14740/21:00124447
Organization unit Central European Institute of Technology
Doi http://dx.doi.org/10.1021/acsnano.1c01742
UT WoS 000665748900074
Keywords in English 2D materials; surface engineering; chiral MXene; fluorescence; molecular switches; supramolecular recognition; electronic devices
Tags CF BIC, ne MU, rivok
Changed by Changed by: Mgr. Pavla Foltynová, Ph.D., učo 106624. Changed: 23/3/2022 12:41.
Abstract
The design and fabrication of active nanomaterials exhibiting multifunctional properties is a must in the socalled global "Fourth Industrial Revolution". In this sense, molecular engineering is a powerful tool to implant original capabilities on a macroscopic scale. Herein, different bio-inspired 2D-MXenes have been developed via a versatile and straightforward synthetic approach. As a proof of concept, Ti3C2Tx MXene has been exploited as a highly sensitive transducing platform for the covalent assembly of active biomolecular architectures (i.e., amino acids). All pivotal properties originated from the anchored targets were proved to be successfully transferred to the resulting bioinspired 2D-MXenes. Appealing applications have been devised for these 2D-MXene prototypes showing (i) chiroptical activity, (ii) fluorescence capabilities, (iii) supramolecular pi-pi interactions, and (iv) stimuli-responsive molecular switchability. Overall, this work demonstrates the fabrication of programmable 2D-MXenes, taking advantage of the inherent characteristics of the implanted (bio)molecular components. Thus, the current bottleneck in the field of 2D-MXenes can be overcome after the significant findings reported here.
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