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August 25, 2025Biosensors26 citationsOpen Access

Progress in Nickel MOF-Based Materials for Electrochemical Biosensor and Supercapacitor Applications

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SVShanmugam VigneshKAKhursheed AhmadTOTae Hwan Oh

Key Points

  • Nickel MOF materials exhibit enhanced sensitivity and selectivity for electrochemical sensors, indicating practical applications.
  • These materials demonstrate excellent specific capacitance with reasonable cyclic stability at low current densities.
  • Review analyses advancements in nickel MOF composites with metal oxides and polymers for diverse sensing applications.
  • Challenges and future perspectives for nickel MOF-based materials are discussed, highlighting ongoing scientific interest.

Abstract

Nickel-based metal–organic frameworks (Ni-MOFs) have received enormous amounts of attention from the scientific community due to their excellent porosity, larger specific surface area, tunable structure, and intrinsic redox properties. In previous years, Ni-MOFs and their hybrid composite materials have been extensively explored for electrochemical sensing applications. As per the reported literature, Ni-MOF-based hybrid materials have been used in the fabrication of electrochemical sensors for the monitoring of ascorbic acid, glucose, L-tryptophan, bisphenol A, carbendazim, catechol, hydroquinone, 4-chlorophenol, uric acid, kaempferol, adenine, L-cysteine, etc. The presence of synergistic effects in Ni-MOF-based hybrid materials plays a crucial role in the development of highly selective electrochemical sensors. Thus, Ni-MOF-based materials exhibited enhanced sensitivity and selectivity with reasonable real sample recovery, which suggested their potential for practical applications. In addition, Ni-MOF-based hybrid composites were also adopted as electrode modifiers for the development of supercapacitors. The Ni-MOF-based materials demonstrated excellent specific capacitance at low current densities with reasonable cyclic stability. This review article provides an overview of recent advancements in the utilization of Ni-MOF-based electrode modifiers with metal oxides, carbon-based materials, MXenes, polymers, and LDH, etc., for the electrochemical detection of environmental pollutants and biomolecules and for supercapacitor applications. In addition, Ni-based bimetallic and trimetallic catalysts and their composites have been reviewed for electrochemical sensing and supercapacitor applications. The key challenges, limitations, and future perspectives of Ni-MOF-based materials are discussed. We believe that the present review article may be beneficial for the scientific community working on the development of Ni-MOF-based materials for electrochemical sensing and supercapacitor applications.

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Cite This Study

Vignesh et al. (2025) studied this question.

synapsesocial.com/papers/68af63e9ad7bf08b1eae4838https://doi.org/10.3390/bios15090560
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