Nickel‐Catalyzed Sila‐Cycloaddition of Dichlorodisilanes: Selective Si─Cl Activation for Cyclic Disilanes and Enantioenriched Synthesis

L Liangliang Qi (State Key Laboratory of Applied Organic Chemistry (SKLAOC) and College of Chemistry and Chemical Engineering Lanzhou University 222 South Tianshui Road Lanzhou 730000 China) S Shaojie Xu (Department of Chemistry and Materials Science School of Science Xi'an Jiaotong‐Liverpool University Suzhou 215123 China) X Xiaobo Pang (State Key Laboratory of Natural Product Chemistry & College of Chemistry and Chemical Engineering, Lanzhou University, 222 South Tianshui Road, Lanzhou 730000, China) Y Yu‐Ke Wu (State Key Laboratory of Applied Organic Chemistry (SKLAOC) and College of Chemistry and Chemical Engineering Lanzhou University 222 South Tianshui Road Lanzhou 730000 China) X Xiaotai Wang (Department of Chemistry and Materials, Science School of Science) X Xing‐Zhong Shu (State Key Laboratory of Applied Organic Chemistry (SKLAOC) and College of Chemistry and Chemical Engineering Lanzhou University 222 South Tianshui Road Lanzhou 730000 China)

Abstract

Abstract Disilanyl architectures holds significant value across diverse fields, particularly in the development of advanced materials. However, their limited accessibility has hindered broader exploration. Herein, we report a catalytic strategy for the synthesis of structurally diverse cyclic disilanes through a [4 + 2] sila‐cycloaddition between readily available dichlorodisilanes and 1,3‐dienes. This transformation proceeds under mild, reductive nickel catalysis via an unusual Si─Cl bond activation pathway and accommodates a broad range of dienes, including bulk feedstocks, cyclic, multi‐substituted, aliphatic, aromatic dienes, and trienes. An asymmetric variant further enables the efficient construction of chiral disilane frameworks with high enantioselectivity. The resulting disilacarbocycle adopts boat‐like conformations, as revealed by X‐ray analysis, due to the elongated Si─Si and Si─C bonds. Mechanistic studies suggest that a triplet Ni 0 species engages in an S N 2‐type oxidative addition to the Si─Cl bond, favoring this pathway over a concerted Si─Si activation. The resulting Si─Ni(I) intermediates are energetically preferred over Si─Ni(II) analogs in the subsequent diene insertion step.

Article Details

Volume / Issue Vol. 64, Issue 35
Published August 25, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (6)

L

Liangliang Qi

State Key Laboratory of Applied Organic Chemistry (SKLAOC) and College of Chemistry and Chemical Engineering Lanzhou University 222 South Tianshui Road Lanzhou 730000 China

S

Shaojie Xu

Department of Chemistry and Materials Science School of Science Xi'an Jiaotong‐Liverpool University Suzhou 215123 China

X

Xiaobo Pang

State Key Laboratory of Natural Product Chemistry & College of Chemistry and Chemical Engineering, Lanzhou University, 222 South Tianshui Road, Lanzhou 730000, China

Y

Yu‐Ke Wu

State Key Laboratory of Applied Organic Chemistry (SKLAOC) and College of Chemistry and Chemical Engineering Lanzhou University 222 South Tianshui Road Lanzhou 730000 China

X

Xiaotai Wang

Department of Chemistry and Materials, Science School of Science

X

Xing‐Zhong Shu

State Key Laboratory of Applied Organic Chemistry (SKLAOC) and College of Chemistry and Chemical Engineering Lanzhou University 222 South Tianshui Road Lanzhou 730000 China