Interface-Programmed Growth of High-Aspect-Ratio 1D Ni–MOF Nanofibers on MXene for Wearable Enzyme-Free Glucose Sensing

Abstract Noninvasive wearable glucose sensors capable of real-time sweat analysis offer a less discomforting alternative for long-term monitoring in patients with diabetes. However, practical implementation remains challenging. Major barriers include insufficient catalytic sensitivity to quantify the low glucose levels in sweat, limited compatibility between nanomaterial synthesis and scalable manufacturing processes, and the lack of a biofluid microenvironment suitable for enzyme-free electrochemical sensing. Here, we address these challenges by combining strong interfacial anchoring on a conductive template with surfactant-assisted growth control to engineer high-aspect-ratio (∼100) 1D Ni–TCPP MOF nanofibers as an active shell on MXene–NH2. In contrast to conventional electrospinning-assisted approaches, the resulting 1D MOF shell is polymer-template-free and thus avoids insulating scaffold components. The resulting fluffy, self-supporting Ni-MOF@MXene architecture is inherently compatible with printed electronics, enabling large-area fabrication of wearable enzyme-free glucose-sensing patches. To overcome the constraints of enzyme-free sensing in physiological biofluids, we further develop an integrated system that combines microfluidics with a NaOH/Nafion/PVA alkaline sustained-release membrane, establishing a localized alkaline microenvironment within sweat to enable continuous analysis.

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Publication Details

Journal
ACS Applied Materials & Interfaces
Published
2026-10-09
DOI
https://doi.org/10.1021/acsami.6c14970
Primary Topic
Electrochemical sensors and biosensors
Type
article
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article

Interface-Programmed Growth of High-Aspect-Ratio 1D Ni–MOF Nanofibers on MXene for Wearable Enzyme-Free Glucose Sensing

Gajanan A. Bodkhe, Xinlin Li, Sang Woo Joo, Chenhao Cong et al.
ACS Applied Materials & Interfaces
Electrochemical sensors and biosensors
article

Interface-Programmed Growth of High-Aspect-Ratio 1D Ni–MOF Nanofibers on MXene for Wearable Enzyme-Free Glucose Sensing

Gajanan A. Bodkhe, Xinlin Li, Sang Woo Joo, Chenhao Cong, Se Hoon Kim, Hongjiang Li, Dandan Zhang, Shoukun Yu, Shushuai Zhu, Chen Wang, Mulin Qu, Peng Liu, Xuan Li
article en

Abstract

Abstract Noninvasive wearable glucose sensors capable of real-time sweat analysis offer a less discomforting alternative for long-term monitoring in patients with diabetes. However, practical implementation remains challenging. Major barriers include insufficient catalytic sensitivity to quantify the low glucose levels in sweat, limited compatibility between nanomaterial synthesis and scalable manufacturing processes, and the lack of a biofluid microenvironment suitable for enzyme-free electrochemical sensing. Here, we address these challenges by combining strong interfacial anchoring on a conductive template with surfactant-assisted growth control to engineer high-aspect-ratio (∼100) 1D Ni–TCPP MOF nanofibers as an active shell on MXene–NH2. In contrast to conventional electrospinning-assisted approaches, the resulting 1D MOF shell is polymer-template-free and thus avoids insulating scaffold components. The resulting fluffy, self-supporting Ni-MOF@MXene architecture is inherently compatible with printed electronics, enabling large-area fabrication of wearable enzyme-free glucose-sensing patches. To overcome the constraints of enzyme-free sensing in physiological biofluids, we further develop an integrated system that combines microfluidics with a NaOH/Nafion/PVA alkaline sustained-release membrane, establishing a localized alkaline microenvironment within sweat to enable continuous analysis.

ACS Applied Materials & Interfaces
Qingdao University (CN), Konkuk University (KR), Tongmyong University (KR), Yeungnam University (KR)
Openalex Percentile: Top 23%
Electrochemical sensors and biosensors
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