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February 5, 2026Biosensors0 citationsOpen Access

Recent Advances in Electrochemical Biosensors for the Detection of Milk Adulterants

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RSRoopkumar SangubotlaAMAnthati MastanKJKim J

Key Points

  • The aim is to evaluate recent advancements in electrochemical biosensors for detecting milk adulterants and their implications.
  • Reviewed various electrochemical biosensor types including amperometric, voltammetric, impedimetric, and photoelectrochemical sensors.
  • Focused on the sensing mechanisms, nanomaterials used, and analytical performance of the sensors.
  • Explored challenges related to matrix interference and regulatory validation.
  • Recent biosensor technologies allow for quick and sensitive detection of milk adulterants like urea and formaldehyde.
  • Challenges such as sensor stability and reproducibility were identified, impacting practical applications.
  • Future directions include the development of portable and IoT-integrated sensors for ongoing dairy monitoring.

Abstract

The precise and reliable detection of milk adulterants has garnered increased scientific interest owing to the rising incidence of food fraud. Recent years have witnessed substantial advancements in optical and electrochemical biosensors for the quick, sensitive, and on-site determination of adulterants. This review thoroughly emphasizes recent developments in electrochemical biosensors, encompassing amperometric, voltammetric, impedimetric, and photoelectrochemical sensors, alongside optical biosensors such as colorimetric, fluorometric, and plasmonic systems. Significant focus is directed towards determination of critical milk adulterants, including variations in pH, urea, formaldehyde (FA), melamine (MEL), nitrates (NO3−), nitrites (NO2−), and sulfites (SO32−). The sensing mechanisms, functional nanomaterials, analytical efficacy, and sample-handling techniques of the described biosensors are critically examined. Moreover, key challenges regarding matrix interference, sensor stability, reproducibility, regulatory validation, and large-scalability are addressed. Ultimately, future directions towards economical, portable, wearable, and Internet of Things (IoT)-integrated biosensors for continuous dairy monitoring are discussed, highlighting the necessity for standardized validation protocols and next-generation technologies in food safety.

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Cite This Study

Sangubotla et al. (2026) studied this question.

synapsesocial.com/papers/6984349af1d9ada3c1fb2f7ehttps://doi.org/10.3390/bios16020092
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