The Role of Shape Commensurability in Chirality Transfer: Gold Nanoshape Solutes in a Discotic Nematic Liquid Crystal Solvent

G Gourab Acharjee (Department of Chemistry and Biochemistry Kent State University Kent Ohio USA) L Lara Querciagrossa (Cineca HPC Bologna Italy) G Grace A. R. Rohaley (Advanced Materials and Liquid Crystal Institute Materials Science Graduate Program Kent State University Kent Ohio USA) N Nicholas M. Kamuti (Department of Chemistry and Biochemistry Kent State University Kent Ohio USA) A Ashwathanarayana Gowda (Advanced Materials and Liquid Crystal Institute Materials Science Graduate Program Kent State University Kent Ohio USA) S Suraj Kumar Pathak (Advanced Materials and Liquid Crystal Institute Materials Science Graduate Program Kent State University Kent Ohio USA) A Asmita Shah (Advanced Materials and Liquid Crystal Institute Materials Science Graduate Program Kent State University Kent Ohio USA) K Kun Zhang J Jianfang Wang C Claudio Zannoni (Dipartimento Di Chimica Industriale and INSTM Università Di Bologna Bologna Italy) T Torsten Hegmann (Department of Chemistry and Biochemistry Kent State University Kent Ohio USA)

Abstract

ABSTRACT Chirality, as an inherently geometric concept, is well understood at most length scales and is a principal attribute of objects and figures. Quantitative models predicting the efficacy of chirality transmission across length scales have only recently begun to emerge. We provide further proof‐of‐concept data and calculations for a modus operandi for nanoshape solutes featuring a chiral ligand shell in an achiral discotic nematic (ND) liquid crystal solvent, demonstrating that chirality transfer can be understood through remarkably simple geometric considerations. This mechanism is based on the product of a pseudoscalar chirality indicator and a geometric shape compatibility factor based on the 2D isoperimetric quotients for nanoshape solutes and N D molecule. The model is tested on an experimental set of precisely engineered gold nanoshapes, rods, prisms, and discs, that validates that shape commensurability between nanoscale solute and nematic solvent is a prerequisite for efficacious chirality transfer as determined by the helical twisting power of the nanoshapes in the induced chiral N D * phase. Thus, we predict that libraries of calculated and in‐parallel acquired experimental data among related nanoshapes and even small organic molecules pave the way for predictive calculations of chirality transfer in nanoscale, macromolecular, biological, and small‐molecule systems.

Article Details

Volume / Issue Vol. 65, Issue 27
Published July 01, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

G

Gourab Acharjee

Department of Chemistry and Biochemistry Kent State University Kent Ohio USA

L

Lara Querciagrossa

Cineca HPC Bologna Italy

G

Grace A. R. Rohaley

Advanced Materials and Liquid Crystal Institute Materials Science Graduate Program Kent State University Kent Ohio USA

N

Nicholas M. Kamuti

Department of Chemistry and Biochemistry Kent State University Kent Ohio USA

A

Ashwathanarayana Gowda

Advanced Materials and Liquid Crystal Institute Materials Science Graduate Program Kent State University Kent Ohio USA

S

Suraj Kumar Pathak

Advanced Materials and Liquid Crystal Institute Materials Science Graduate Program Kent State University Kent Ohio USA

A

Asmita Shah

Advanced Materials and Liquid Crystal Institute Materials Science Graduate Program Kent State University Kent Ohio USA

K

Kun Zhang

J

Jianfang Wang

C

Claudio Zannoni

Dipartimento Di Chimica Industriale and INSTM Università Di Bologna Bologna Italy

T

Torsten Hegmann

Department of Chemistry and Biochemistry Kent State University Kent Ohio USA