Mechanically Planar Chiral Molecules by a SuFEx‐Auxiliary Approach

S Shengtong Niu (Department of Chemistry University of Wyoming Laramie Wyoming USA) Y Yingying Jiang D Darian W. Lewis (Department of Chemistry University of Wyoming Laramie Wyoming USA) O Omotolani E. Owoseeni (Department of Chemistry University of Wyoming Laramie Wyoming USA) M Md Mahmudul Hassan (Department of Chemistry University of Wyoming Laramie Wyoming USA) N Navamoney Arulsamy (Department of Chemistry University of Wyoming Laramie Wyoming USA) T Timothy Stephenson (Department of Chemistry University of Wyoming Laramie Wyoming USA) K Kelsey Anderson (Lassogen, Inc., 3830 Valley Centre Drive, Suite 705-562, San Diego, California 92130, United States) Q Qian Yang Y Yi Yao A Alexander Mariscal (Department of Chemistry University of South Florida Tampa Florida USA) W Wenqi Liu C Chao Duan P Penghao Li (Beijing National Laboratory for Molecular Sciences) X Xuanye Zhang (Department of Chemistry University of Wyoming Laramie Wyoming USA) A Alexander K. Goroncy (Department of Chemistry University of Wyoming Laramie Wyoming USA) X Xuesong Li

Abstract

ABSTRACT Mechanical chirality, an emerging paradigm in stereochemistry, arises uniquely from the formation of a mechanical bond between achiral and oriented molecular subcomponents, endowing the resulting mechanically interlocked molecules (MIMs) with broad application potential. Despite its potential, it has remained underexplored largely due to the synthetic challenges in producing enantiopure mechanically planar chiral (MPC) molecules, particularly a scalable approach. Here, we introduce the sulfur(VI) fluoride exchange (SuFEx) click reaction into the MIMs field, reporting to employ SuFEx as a metal‐free active template method for the synthesis of MPC rotaxanes (up to gram‐scale). Subsequently, enantiopure MPC rotaxanes (ee >99%) can be efficiently obtained after the convenient one‐step auxiliary elimination by either removal or oxidation of sulfinyl group. Furthermore, the derivative synthesis that can introduce various functional groups either on the macrocycles or on the dumbbells of rotaxanes enables the preparation of a large variety of enantiopure MPC rotaxanes, including higher‐order enantiopure MPC [3]rotaxane and enantiopure co‐conformationally MPC [3]rotaxane. Notably, using this strategy, enantiopure MPC catenanes can also be obtained by the transformation of rotaxanes, which preserves the enantiopurity and chiroptical properties of parent rotaxanes and provides a new approach to synthesizing enantiopure MPC catenanes.

Article Details

Volume / Issue Vol. 65, Issue 15
Published April 06, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (17)

S

Shengtong Niu

Department of Chemistry University of Wyoming Laramie Wyoming USA

Y

Yingying Jiang

D

Darian W. Lewis

Department of Chemistry University of Wyoming Laramie Wyoming USA

O

Omotolani E. Owoseeni

Department of Chemistry University of Wyoming Laramie Wyoming USA

M

Md Mahmudul Hassan

Department of Chemistry University of Wyoming Laramie Wyoming USA

N

Navamoney Arulsamy

Department of Chemistry University of Wyoming Laramie Wyoming USA

T

Timothy Stephenson

Department of Chemistry University of Wyoming Laramie Wyoming USA

K

Kelsey Anderson

Lassogen, Inc., 3830 Valley Centre Drive, Suite 705-562, San Diego, California 92130, United States

Q

Qian Yang

Y

Yi Yao

A

Alexander Mariscal

Department of Chemistry University of South Florida Tampa Florida USA

W

Wenqi Liu

C

Chao Duan

P

Penghao Li

Beijing National Laboratory for Molecular Sciences

X

Xuanye Zhang

Department of Chemistry University of Wyoming Laramie Wyoming USA

A

Alexander K. Goroncy

Department of Chemistry University of Wyoming Laramie Wyoming USA

X

Xuesong Li