High‐Performance Squaramine Macrocycles as Molecular Sieves for Selective Halogen Separation and Aromatic Bromination

S Soumaya Khlifi (Smart Hybrid Materials (SHMs) Laboratory Physical Sciences and Engineering Division (PSE) King Abdullah University of Science and Technology (KAUST) Thuwal 23955–6900 Kingdom of Saudi Arabia) A Arnaud Chaix (Smart Hybrid Materials (SHMs) Laboratory Physical Sciences and Engineering Division (PSE) King Abdullah University of Science and Technology (KAUST) Thuwal 23955–6900 Kingdom of Saudi Arabia) L Lukman O. Alimi (Smart Hybrid Materials (SHMs) Laboratory, Physical Science and Engineering (PSE) Division) V Viktoriia Zheltova (Smart Hybrid Materials (SHMs) Laboratory Physical Sciences and Engineering Division (PSE) King Abdullah University of Science and Technology (KAUST) Thuwal 23955–6900 Kingdom of Saudi Arabia) R Romain Dupuis (Laboratoire de Mécanique et Génie Civil (LMGC), CNRS, Université de Montpellier 1 , Montpellier,) B Basem Moosa (Smart Hybrid Materials (SHMs) Laboratory, Physical Science and Engineering (PSE) Division) N Niveen M. Khashab (Smart Hybrid Materials (SHMs) Laboratory, Physical Science and Engineering (PSE) Division)

Abstract

Abstract Selective separation of bromine (Br 2 ) from iodine (I 2 ) remains a fundamental bottleneck in industrial halogen separation and applied bromination chemistry. A safe, efficient, and selective Br 2 supply is indispensable for large‐scale transformations and product purity, yet separation is complicated by their comparable kinetic diameters (3.5 and 4.0 Å, respectively) and strong tendency to form interhalogen species. Conventional capture technologies remain hindered by limited stability, low capacity, and poor selectivity. Here, structurally tunable squaramine‐based [2+2] macrocycles with intrinsic cavity diameters (∼3.5 Å) are introduced as efficient and selective molecular sieves. The pristine squaramine [2+2] macrocycle achieves high Br 2 uptake of 4.9 g.g −1 from cyclohexane solution and 5.7 g.g −1 in the vapor phase, while its hydrochloride derivative ([2+2].HCl) displays substantial Br 2 uptake (4.3 g.g −1 cyclohexane, 3.0 g.g −1 in vapor) and completely excludes I 2 even under concentrated mixed‐halogen conditions. Single‐crystal X‐ray diffraction revealed a chloride‐to‐bromide exchange mechanism stabilizing unique polybromide species, further supported by UV–vis, XPS, Raman spectroscopy, and metadynamics simulations. These findings establish squaramine [2+2] as the first macrocyclic molecular sieves for selective Br 2 capture and total I 2 rejection, offering robust and scalable platforms for halogen separation, environmental remediation, and safe, easy‐to‐handle Br 2 reservoirs for selective catalytic and synthetic bromination processes.

Article Details

Volume / Issue Vol. 65, Issue 4
Published January 22, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

S

Soumaya Khlifi

Smart Hybrid Materials (SHMs) Laboratory Physical Sciences and Engineering Division (PSE) King Abdullah University of Science and Technology (KAUST) Thuwal 23955–6900 Kingdom of Saudi Arabia

A

Arnaud Chaix

Smart Hybrid Materials (SHMs) Laboratory Physical Sciences and Engineering Division (PSE) King Abdullah University of Science and Technology (KAUST) Thuwal 23955–6900 Kingdom of Saudi Arabia

L

Lukman O. Alimi

Smart Hybrid Materials (SHMs) Laboratory, Physical Science and Engineering (PSE) Division

V

Viktoriia Zheltova

Smart Hybrid Materials (SHMs) Laboratory Physical Sciences and Engineering Division (PSE) King Abdullah University of Science and Technology (KAUST) Thuwal 23955–6900 Kingdom of Saudi Arabia

R

Romain Dupuis

Laboratoire de Mécanique et Génie Civil (LMGC), CNRS, Université de Montpellier 1 , Montpellier,

B

Basem Moosa

Smart Hybrid Materials (SHMs) Laboratory, Physical Science and Engineering (PSE) Division

N

Niveen M. Khashab

Smart Hybrid Materials (SHMs) Laboratory, Physical Science and Engineering (PSE) Division