Full on-device manipulation of olefin metathesis for precise manufacturing
Yilin Guo
1
,
Yang Chen
1
,
L Zhang
1
,
Yujie Hu
2
,
Jie Hao
3
,
Chuancheng Jia
3
,
Yang Yang
4
,
Yan Xu
1
,
Xingxing Li
2
,
Fanyang Mo
5
,
Yanwei Li
6
,
K. N. Houk
7
,
Xuefeng Guo
1, 3
1
5
Тип публикации: Journal Article
Дата публикации: 2024-11-08
scimago Q1
wos Q1
БС1
SJR: 14.612
CiteScore: 62.2
Impact factor: 34.9
ISSN: 17483387, 17483395
PubMed ID:
39516385
Краткое описание
Olefin metathesis, as a powerful metal-catalysed carbon–carbon bond-forming method, has achieved considerable progress in recent years. However, the complexity originating from multicomponent interactions has long impeded a complete mechanistic understanding of olefin metathesis, which hampers further optimization of the reaction. Here, we clarify both productive and hidden degenerate pathways of ring-closing metathesis by focusing on one individual catalyst, using a sensitive single-molecule electrical detection platform. In addition to visualizing the full pathway, we found that the conventionally unwanted degenerate pathways have an unexpected constructive coupling effect on the productive pathway, and both types of pathway can be regulated by an external electric field. We then pushed forward this ability to ring-opening metathesis polymerization involving more interactive components. With single-monomer-insertion-event resolution, precise on-device synthesis of a single polymer was achieved by online manipulation of monomer insertion dynamics, intramolecular chain transfer, stereoregularity, degree of polymerization and block copolymerization. These results offer a comprehensive mechanistic understanding of olefin metathesis, exemplifying infinite opportunities for practical precise manufacturing. Single-molecule electrical detections clarify both productive and hidden degenerate pathways of ring-closing metathesis, and enable precise on-device synthesis of a single polymer with single-monomer-insertion-event resolution.
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Guo Y. et al. Full on-device manipulation of olefin metathesis for precise manufacturing // Nature Nanotechnology. 2024.
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Guo Y., Yang Chen, Zhang L., Hu Y., Hao J., Jia C., Yang Y., Xu Y., Li X., Mo F., Li Y., Houk K. N., Guo X. Full on-device manipulation of olefin metathesis for precise manufacturing // Nature Nanotechnology. 2024.
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TY - JOUR
DO - 10.1038/s41565-024-01814-y
UR - https://www.nature.com/articles/s41565-024-01814-y
TI - Full on-device manipulation of olefin metathesis for precise manufacturing
T2 - Nature Nanotechnology
AU - Guo, Yilin
AU - Yang Chen
AU - Zhang, L
AU - Hu, Yujie
AU - Hao, Jie
AU - Jia, Chuancheng
AU - Yang, Yang
AU - Xu, Yan
AU - Li, Xingxing
AU - Mo, Fanyang
AU - Li, Yanwei
AU - Houk, K. N.
AU - Guo, Xuefeng
PY - 2024
DA - 2024/11/08
PB - Springer Nature
PMID - 39516385
SN - 1748-3387
SN - 1748-3395
ER -
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@article{2024_Guo,
author = {Yilin Guo and Yang Chen and L Zhang and Yujie Hu and Jie Hao and Chuancheng Jia and Yang Yang and Yan Xu and Xingxing Li and Fanyang Mo and Yanwei Li and K. N. Houk and Xuefeng Guo},
title = {Full on-device manipulation of olefin metathesis for precise manufacturing},
journal = {Nature Nanotechnology},
year = {2024},
publisher = {Springer Nature},
month = {nov},
url = {https://www.nature.com/articles/s41565-024-01814-y},
doi = {10.1038/s41565-024-01814-y}
}
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