Revolutionizing Glucose Monitoring: Enzyme-Free 2D-MoS 2 Nanostructures for Ultra-Sensitive Glucose Sensors with Real-Time Health-Monitoring Capabilities.
Mustri BanoGowhar A NaikooFatima BaOmarJahangir Ahmad RatherIsrar U HassanRayees Ahmad SheikhPalanisamy KannanMurtaza M TambuwalaPublished in: ACS omega (2024)
The growing requirement for real-time monitoring of health factors such as heart rate, temperature, and blood glucose levels has resulted in an increase in demand for electrochemical sensors. This study focuses on enzyme-free glucose sensors based on 2D-MoS 2 nanostructures explored by simple hydrothermal route. The 2D-MoS 2 nanostructures were characterized by powder X-ray diffraction, energy-dispersive X-ray spectroscopy, scanning electron microscopy, transmission electron microscopy, Raman spectroscopy, and XPS techniques and were immobilized at GCE to obtain MoS 2 -GCE interface. The fabricated interface was characterized by electrochemical impedance spectroscopy which shows less charge transfer resistance and demonstrated superior electrocatalytic properties of the modified surface. The sensing interface was applied for the detection of glucose using amperometry. The MoS 2 -GCE-sensing interface responded effectively as a nonenzymatic glucose sensor (NEGS) over a linearity range of 0.01-0.20 μM with a very low detection limit of 22.08 ng mL -1 . This study demonstrates an easy method for developing a MoS 2 -GCE interface, providing a potential option for the construction of flexible and disposable nonenzymatic glucose sensors (NEGS). Moreover, the fabricated MoS 2 -GCE electrode precisely detected glucose molecules in real blood serum and urine samples of diabetic and nondiabetic persons. These findings suggest that 2D-MoS 2 nanostructured materials show considerable promise as a possible option for hyperglycemia detection and therapy. Furthermore, the development of NEGS might create new prospects in the glucometer industry.
Keyphrases
- electron microscopy
- blood glucose
- quantum dots
- reduced graphene oxide
- room temperature
- high resolution
- heart rate
- ionic liquid
- blood pressure
- label free
- transition metal
- gold nanoparticles
- visible light
- public health
- glycemic control
- healthcare
- highly efficient
- mental health
- low cost
- raman spectroscopy
- heart rate variability
- single molecule
- stem cells
- magnetic resonance imaging
- human health
- risk assessment
- mass spectrometry
- machine learning
- health information
- heavy metals
- skeletal muscle
- cell therapy
- molecularly imprinted
- oxidative stress
- loop mediated isothermal amplification
- bone marrow
- adipose tissue
- gas chromatography mass spectrometry
- mesenchymal stem cells
- crystal structure
- gas chromatography