Accelerated Porosity Screening Using a Multichannel Colorimetric Array

Y Yushu Han (Department of Chemistry and Materials Innovation Factory University of Liverpool 51 Oxford Street Liverpool L7 3NY UK) I Isaiah Borne (Materials Innovation Factory, Department of Chemistry, The University of Liverpool, 51 Oxford Street, Liverpool L7 3NY, U.K.) B Biplab Dutta (Department of Chemistry and Materials Innovation Factory University of Liverpool 51 Oxford Street Liverpool L7 3NY UK) R Rob Clowes (Department of Chemistry and Materials Innovation Factory University of Liverpool 51 Oxford Street Liverpool L7 3NY UK) H Hang Qu (Department of Chemistry) A Alex James (Department of Chemistry and Materials Innovation Factory University of Liverpool 51 Oxford Street Liverpool L7 3NY UK) C Charlotte E. Boott (Department of Chemistry and Materials Innovation Factory University of Liverpool 51 Oxford Street Liverpool L7 3NY UK) M Marc A. Little (Department of Chemistry and Materials Innovation Factory University of Liverpool 51 Oxford Street Liverpool L7 3NY UK) A Andrew I. Cooper (Department of Chemistry)

Abstract

AbstractPorous materials are important for many technologies, but the measurement of porosity by gas adsorption isotherms is slow, taking around one day per sample using a single‐port gas sorption analyzer, even when using a “quick” analysis method with relatively few data points. With the increased use of automated platforms for material generation, porosity analysis is now frequently the bottleneck in the discovery of new porous materials. Here, we present a semiautomated pre‐screening strategy that uses dye adsorption to create a colorimetric array that is combined with computer vision analysis for porosity screening. By using a six‐dye multichannel array and a defined porosity threshold, our method rapidly screened 50 candidate materials that spanned molecular solids, polymers, and metal–organic frameworks. The method showed a 98–100% classification accuracy compared with gas uptake measurements. While this method is more qualitative than quantitative, it is more than 30 times faster than conventional gas sorption measurements, and it has the scope to be made much faster with greater parallelization and automation. This makes this colorimetric method suitable for pre‐screening arrays of materials to choose samples that merit more detailed conventional porosity analysis.

Article Details

Volume / Issue Vol. 64, Issue 40
Published September 26, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

Y

Yushu Han

Department of Chemistry and Materials Innovation Factory University of Liverpool 51 Oxford Street Liverpool L7 3NY UK

I

Isaiah Borne

Materials Innovation Factory, Department of Chemistry, The University of Liverpool, 51 Oxford Street, Liverpool L7 3NY, U.K.

B

Biplab Dutta

Department of Chemistry and Materials Innovation Factory University of Liverpool 51 Oxford Street Liverpool L7 3NY UK

R

Rob Clowes

Department of Chemistry and Materials Innovation Factory University of Liverpool 51 Oxford Street Liverpool L7 3NY UK

H

Hang Qu

Department of Chemistry

A

Alex James

Department of Chemistry and Materials Innovation Factory University of Liverpool 51 Oxford Street Liverpool L7 3NY UK

C

Charlotte E. Boott

Department of Chemistry and Materials Innovation Factory University of Liverpool 51 Oxford Street Liverpool L7 3NY UK

M

Marc A. Little

Department of Chemistry and Materials Innovation Factory University of Liverpool 51 Oxford Street Liverpool L7 3NY UK

A

Andrew I. Cooper

Department of Chemistry