Time–temperature–solvent modulated Zn–Fe bimetallic MOFs: correlating structural dynamics with optical, redox, and dopamine sensing performance

Abstract

Engineering synergistic metal centres inside metal–organic frameworks (MOFs) provides an effective approach to simultaneously adjust structural, magnetic, and electronic properties within a single architecture. We present a multivariate solvothermal method that utilizes the time–temperature–solvent (T–T–S) synthesis space to fabricate zinc–iron bimetallic metal–organic frameworks (ZnFe-MOFs) based on the FeIII–MIL-88B (MIL – Materials of Institute Lavoisier) structure. The systematic alteration of reaction duration (12–48 hours), temperature (100–140 °C), and solvent polarity (N,N-dimethyl formamide (DMF)/ethanol) facilitates precise regulation of lattice expansion–contraction (“breathing”), metal-site distribution, and crystallographic orientation. Powder X-ray diffraction (PXRD) revealed that ZnII incorporation enhances structural stability and induces preferential growth along the (101) plane. Electronic modulation through Zn2+ substitution effectively inhibits Fe3+ mediated non-radiative decay processes, resulting in a significant increase in ligand-centered fluorescence. Meanwhile, glutathione depletion assays, electron paramagnetic resonance (EPR) spectroscopy, and magnetic force microscopy verify the retention of Fe-centered redox activity and the integrity of nanoscale magnetic domains. The designed optical–redox framework results in superior electrocatalytic efficacy: ZnFe-MOF-modified electrodes provide a detection limit of 0.043 µM, a linear range of 10–1000 µM, and a sensitivity of 66.24 µA µM−1 cm−2 for dopamine oxidation, exhibiting significant selectivity against prevalent interferents. These findings demonstrate that bimetallic synergy-driven structural modulation provides an effective design strategy for metal–organic frameworks, enabling enhanced optical emission, retention of magnetic functionality, and improved redox-active sensing performance.

Graphical abstract: Time–temperature–solvent modulated Zn–Fe bimetallic MOFs: correlating structural dynamics with optical, redox, and dopamine sensing performance

Supplementary files

Article information

Article type
Paper
Submitted
19 Jan 2026
Accepted
23 Apr 2026
First published
08 May 2026

J. Mater. Chem. B, 2026, Advance Article

Time–temperature–solvent modulated Zn–Fe bimetallic MOFs: correlating structural dynamics with optical, redox, and dopamine sensing performance

D. Sharma, P. Kadian, R. Sharma and J. K. Randhawa, J. Mater. Chem. B, 2026, Advance Article , DOI: 10.1039/D6TB00139D

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