Hong Wan, Mingfang Zhan, Minglan Ma, Sima Akter, Chunyan Yin, Sakil Mahmud
A copper–molybdenum–phosphate (CuMoP)‐modified screen‐printed carbon electrode (SPCE) was developed (mSPCE) via one‐step potentiostatic codeposition for the electrochemical detection of aspirin (acetylsalicylic acid, ASA). Microscopic and spectroscopic analyses confirmed a uniform, granular CuMoP film with mixed‐valence Cu + /Cu 2+ and Mo 6+ centers coordinated by phosphate groups, thereby enhancing electron–proton coupling. The sensor exhibited a well‐defined irreversible oxidation peak at 0.866 V (pH 3.0), showed highly sensitive detection for ASA, and followed a diffusion‐controlled two‐electron mechanism. Differential pulse voltammetry revealed an excellent linear response ( I = 0.036 + 0.012 C, R 2 = 0.9979) over 2.0–92.6 µM, with a limit of detection of 1.5 µM and a quantification limit of 5.0 µM. The mSPCE displayed high stability (RSD = 2.6%), reproducibility (RSD = 5.4%), and recovery of 91.21%–103.52% for pharmaceutical tablets. Outstanding selectivity against 100‐fold interfering species highlights the synergistic Cu–Mo–P redox network as an efficient, low‐cost, and portable platform for sensitive determination of ASA in real samples.