Cargando…

Precise regulation of the multicolor spectrum of carbon dots based on the bionic leaf vein ultrasonic microreactor

Carbon dots (CDs) are a fascinating new type of fluorescent carbon nanomaterial with excellent photoelectric properties. However, preparing long-wavelength and multicolor-emitting CDs has been challenging, limiting their large-scale applications. Fortunately, a new efficient method has been proposed...

Descripción completa

Detalles Bibliográficos
Autores principales: Rao, Longshi, Sun, Bin, Liu, Yang, Zhang, Qing, Zhong, Guisheng, Wen, Mingfu, Zhang, Jiayang, Fu, Ting, Niu, Xiaodong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10656244/
https://www.ncbi.nlm.nih.gov/pubmed/37924614
http://dx.doi.org/10.1016/j.ultsonch.2023.106674
_version_ 1785136971378589696
author Rao, Longshi
Sun, Bin
Liu, Yang
Zhang, Qing
Zhong, Guisheng
Wen, Mingfu
Zhang, Jiayang
Fu, Ting
Niu, Xiaodong
author_facet Rao, Longshi
Sun, Bin
Liu, Yang
Zhang, Qing
Zhong, Guisheng
Wen, Mingfu
Zhang, Jiayang
Fu, Ting
Niu, Xiaodong
author_sort Rao, Longshi
collection PubMed
description Carbon dots (CDs) are a fascinating new type of fluorescent carbon nanomaterial with excellent photoelectric properties. However, preparing long-wavelength and multicolor-emitting CDs has been challenging, limiting their large-scale applications. Fortunately, a new efficient method has been proposed to co-regulate CDs' multicolor spectra using an ultrasonic microreactor. Inspired by plant leaves, a bionic vein microchannel was designed with good fluidity and high energy transfer efficiency. The optimal microchannel structural parameters were determined after investigating the effects of fractal angle, depth-to-width ratio, and inlet angle on the flow uniformity of the microchannel using numerical simulations. The efficiency of ultrasonic energy transfer was improved by directly coupling the microreactor and the sandwich transducer to fabricate the ultrasonic microreactor. Simulation results showed that the ultrasonic microreactor's vibration resonated along the longitudinal direction, and the ultrasonic intensity of the microreactor was maximal and uniform. A high-efficiency and controllable ultrasonic microreactor system was built to synthesize the CDs in situ. The influence of the ultrasound field intensity on CDs' preparation in a microreactor was simultaneously investigated to verify the ultrasound enhancement, and the PLQY of the high-performance CDs was found to be 83.1%. The CDs' multicolor spectra from the blue to the red region can be precisely tuned by adjusting key reaction parameters such as reaction temperature, flow rate, and precursor concentration. This new method shows promising applications in lighting, display, and other fields, making CDs a versatile and exciting new material to explore.
format Online
Article
Text
id pubmed-10656244
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-106562442023-11-02 Precise regulation of the multicolor spectrum of carbon dots based on the bionic leaf vein ultrasonic microreactor Rao, Longshi Sun, Bin Liu, Yang Zhang, Qing Zhong, Guisheng Wen, Mingfu Zhang, Jiayang Fu, Ting Niu, Xiaodong Ultrason Sonochem Original Research Article Carbon dots (CDs) are a fascinating new type of fluorescent carbon nanomaterial with excellent photoelectric properties. However, preparing long-wavelength and multicolor-emitting CDs has been challenging, limiting their large-scale applications. Fortunately, a new efficient method has been proposed to co-regulate CDs' multicolor spectra using an ultrasonic microreactor. Inspired by plant leaves, a bionic vein microchannel was designed with good fluidity and high energy transfer efficiency. The optimal microchannel structural parameters were determined after investigating the effects of fractal angle, depth-to-width ratio, and inlet angle on the flow uniformity of the microchannel using numerical simulations. The efficiency of ultrasonic energy transfer was improved by directly coupling the microreactor and the sandwich transducer to fabricate the ultrasonic microreactor. Simulation results showed that the ultrasonic microreactor's vibration resonated along the longitudinal direction, and the ultrasonic intensity of the microreactor was maximal and uniform. A high-efficiency and controllable ultrasonic microreactor system was built to synthesize the CDs in situ. The influence of the ultrasound field intensity on CDs' preparation in a microreactor was simultaneously investigated to verify the ultrasound enhancement, and the PLQY of the high-performance CDs was found to be 83.1%. The CDs' multicolor spectra from the blue to the red region can be precisely tuned by adjusting key reaction parameters such as reaction temperature, flow rate, and precursor concentration. This new method shows promising applications in lighting, display, and other fields, making CDs a versatile and exciting new material to explore. Elsevier 2023-11-02 /pmc/articles/PMC10656244/ /pubmed/37924614 http://dx.doi.org/10.1016/j.ultsonch.2023.106674 Text en © 2023 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Research Article
Rao, Longshi
Sun, Bin
Liu, Yang
Zhang, Qing
Zhong, Guisheng
Wen, Mingfu
Zhang, Jiayang
Fu, Ting
Niu, Xiaodong
Precise regulation of the multicolor spectrum of carbon dots based on the bionic leaf vein ultrasonic microreactor
title Precise regulation of the multicolor spectrum of carbon dots based on the bionic leaf vein ultrasonic microreactor
title_full Precise regulation of the multicolor spectrum of carbon dots based on the bionic leaf vein ultrasonic microreactor
title_fullStr Precise regulation of the multicolor spectrum of carbon dots based on the bionic leaf vein ultrasonic microreactor
title_full_unstemmed Precise regulation of the multicolor spectrum of carbon dots based on the bionic leaf vein ultrasonic microreactor
title_short Precise regulation of the multicolor spectrum of carbon dots based on the bionic leaf vein ultrasonic microreactor
title_sort precise regulation of the multicolor spectrum of carbon dots based on the bionic leaf vein ultrasonic microreactor
topic Original Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10656244/
https://www.ncbi.nlm.nih.gov/pubmed/37924614
http://dx.doi.org/10.1016/j.ultsonch.2023.106674
work_keys_str_mv AT raolongshi preciseregulationofthemulticolorspectrumofcarbondotsbasedonthebionicleafveinultrasonicmicroreactor
AT sunbin preciseregulationofthemulticolorspectrumofcarbondotsbasedonthebionicleafveinultrasonicmicroreactor
AT liuyang preciseregulationofthemulticolorspectrumofcarbondotsbasedonthebionicleafveinultrasonicmicroreactor
AT zhangqing preciseregulationofthemulticolorspectrumofcarbondotsbasedonthebionicleafveinultrasonicmicroreactor
AT zhongguisheng preciseregulationofthemulticolorspectrumofcarbondotsbasedonthebionicleafveinultrasonicmicroreactor
AT wenmingfu preciseregulationofthemulticolorspectrumofcarbondotsbasedonthebionicleafveinultrasonicmicroreactor
AT zhangjiayang preciseregulationofthemulticolorspectrumofcarbondotsbasedonthebionicleafveinultrasonicmicroreactor
AT futing preciseregulationofthemulticolorspectrumofcarbondotsbasedonthebionicleafveinultrasonicmicroreactor
AT niuxiaodong preciseregulationofthemulticolorspectrumofcarbondotsbasedonthebionicleafveinultrasonicmicroreactor