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March 27, 2026Biosensors7 citationsOpen Access

A Portable and Highly Selective Electrochemical Sensor Based on Copper–Nickel Oxide-Decorated Ordered Mesoporous Carbon for Serotonin Detection

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TRThenmozhi RajarathinamSJSivaguru JayaramanJYJang‐Hee Yoon

Key Points

  • This research aims to develop a highly selective electrochemical sensor for rapid detection of serotonin using a novel composite material.
  • Designed a screen-printed carbon electrode using ordered mesoporous carbon decorated with copper and nickel oxides.
  • Conducted electrochemical measurements to assess the sensor's performance for serotonin detection and selectivity against other neurochemicals.
  • Tested the sensor with human serum and urine samples to evaluate practical applicability.
  • Achieved a detection limit of 42.5 nM for serotonin with a sensitivity of 1.56 A M−1 cm−2.
  • Demonstrated a linear dynamic range from 0.0 to 80.0 µM for serotonin detection.
  • Showed recovery percentages ranging from 91.1% to 98.3% in human serum and urine samples.

Abstract

Electrochemical sensors are user-friendly devices designed for the rapid and straightforward detection of target analytes. Serotonin (5-hydroxytryptamine, 5-HT) is a key neurotransmitter and neuromodulator that regulates diverse neuronal processes. Using a custom-designed screen-printed carbon electrode (SPCE) incorporating ordered mesoporous carbon–bimetal oxides of Cu and Ni (CuO–NiO–OMC), rapid and real-time detection of 5-HT was achieved. The CuO–NiO–OMC structure featured highly active CuO and NiO catalytic sites that effectively promoted the irreversible oxidation of 5-HT (vs. Ag/AgCl reference electrode). The CuO–NiO–OMC/SPCE sensor, connected to a portable potentiostat, exhibited exceptional electrocatalytic performance for the oxidation of 5-HT, with a detection limit of 42.5 nM. The sensitivity was 1.56 A M−1 cm−2, and the linear dynamic range was 0.0–80.0 µM. The CuO–NiO–OMC/SPCE sensor also demonstrated outstanding selectivity in the presence of competing neurochemicals, including norepinephrine, epinephrine, dopamine, and glutamate, as well as high concentrations of tested biomolecules and inorganic ions. Furthermore, the practicality of the sensor was demonstrated using human serum and urine samples, with recovery percentages ranging from 91.1% to 98.3%. Thus, the CuO–NiO–OMC/SPCE sensor offers an effective approach for 5-HT sensing, thereby permitting molecular-level understanding of brain function.

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Cite This Study

Rajarathinam et al. (2026) studied this question.

synapsesocial.com/papers/69c620ab15a0a509bde1945ehttps://doi.org/10.3390/bios16040185
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