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June 1, 2026Results in Chemistry0 citationsOpen Access

Synergistic MnO₂/PANI/rGO ternary nanohybrid for highly sensitive electrochemical determination of doxorubicin at physiological pH

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NPNeda PoormolaieMBMousa BohlooliMMMonireh Movahedi

Key Result

A MnO2/PANI/rGO-modified electrode enabled highly sensitive electrochemical detection of doxorubicin with a linear response over 0.01–3 μM and a detection limit of 0.0055 μM.

Key Points

  • The aim is to develop a highly sensitive method for detecting doxorubicin using a unique nanocomposite sensor.
  • Developed a MnO₂/PANI/rGO nanocomposite for modifying a glassy carbon electrode.
  • Characterized the nanocomposite using FE-SEM and TEM.
  • Performed electrochemical tests to evaluate response characteristics under physiological pH.
  • The sensor showed a linear response from 0.01 to 3 μM with a detection limit of 0.0055 μM.
  • Demonstrated superior sensitivity compared to bare, single, and binary composites.
  • Achieved high recovery and precision in validated human serum tests.

Structured PICO

P
Population
In vitro electrochemical sensor development validated using commercial human serum
I
Intervention
MnO₂/PANI/rGO-modified glassy carbon electrode
C
Comparator
Bare, single-component, and binary-component electrodes
O
Outcome
Electrochemical detection of doxorubicin (linear response and detection limit)

The MnO₂/PANI/rGO ternary nanohybrid provides a highly sensitive platform for the electrochemical determination of doxorubicin in biologically relevant matrices.

Abstract

Monitoring doxorubicin (DOX) at clinically relevant levels is essential due to its narrow therapeutic index and dose-dependent cardiotoxicity, necessitating sensitive and reliable analytical tools. In this work, a ternary MnO₂/polyaniline/reduced graphene oxide (MnO₂/PANI/rGO) nanocomposite was rationally engineered and employed to modify a glassy carbon electrode for the electrochemical detection of DOX under physiological conditions (pH 7.0). The nanocomposite was synthesized via a stepwise procedure and thoroughly characterized by FE-SEM and TEM analyses. Electrochemical investigations revealed that the MnO₂/PANI/rGO-modified electrode exhibits a dramatically enhanced oxidation response toward DOX compared with bare, single-component, and binary-component electrodes, confirming the presence of a pronounced synergistic effect among MnO₂, PANI, and rGO. This synergistic ternary architecture provided an increased electroactive surface area, improved charge-transfer kinetics, and accelerated DOX redox behavior. Under optimized conditions, the sensor delivered a linear response over 0.01–3 μM with a detection limit of 0.0055 μM (S/N = 3). The practical performance of the sensor was validated using commercial human serum analyzed via the standard addition method, achieving high recovery and precision. These findings demonstrate that the synergistic MnO₂/PANI/rGO ternary nanohybrid offers a robust and highly sensitive platform for the electrochemical determination of doxorubicin in biologically relevant matrices.

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Cite This Study

Poormolaie et al. (2026) studied Doxorubicin detection. MnO2/PANI/rGO-modified electrode vs. Bare, single-component, and binary-component electrodes was evaluated on Electrochemical detection of doxorubicin (linear response and detection limit). A MnO2/PANI/rGO-modified electrode enabled highly sensitive electrochemical detection of doxorubicin with a linear response over 0.01–3 μM and a detection limit of 0.0055 μM.

synapsesocial.com/papers/6a1d218f02fbce91306378f1https://doi.org/10.1016/j.rechem.2026.103506
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