Development of an Electrochemical Platform Based on Zinc Oxide Nanoparticles Embedded onto Montmorillonite Clay Functionalized with Phenylalanine for the Nano-Sensing of Acetaminophen in Pharmaceutical Tablets
Abstract
1. Introduction
2. Materials and Methods
2.1. Chemicals and Reagents
2.2. Synthesis of Electrode Material (ZnONPs-Sa/Phe)
2.3. Preparation of the Working Electrode and Electrochemical Procedure
2.4. Equipment for Physicochemical Characterization
3. Results
3.1. Physicochemical Characterizations of Sa, ZnONPs-Sa, and ZnONPs-Sa/Phe
3.2. Electrochemical Characterization of Sa, ZnONPs-Sa, and ZnONPs-Sa/Phe
3.3. Electrochemical Determination of ACOP
3.3.1. Electrochemical Behavior and Kinetic Study of ACOP
3.3.2. Influence of the Electrode Composition, the Modifier Loading, and the Detection Medium
3.3.3. Influence of pH and Calibration Curve
3.3.4. Interference Study, Reproducibility, Repeatability and Stability of GCE/ZnONPs-Sa/Phe
3.3.5. Real Sample Analysis Using the GCE/ZnONPs-(Sa)/Phe Sensor
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Chen, X.; Zhu, J.; Xi, Q.; Yang, W. A High Performance Electrochemical Sensor for Acetaminophen Based on Single-Walled Carbon Nanotube–Graphene Nanosheet Hybrid Films. Sens. Actuators B Chem. 2012, 161, 648–654. [Google Scholar] [CrossRef] [Scilit]
- Bannwarth, B. Acetaminophen or NSAIDs for the Treatment of Osteoarthritis. Best Pract. Res. Clin. Rheumatol. 2006, 20, 117–129. [Google Scholar] [CrossRef] [Scilit]
- Buxeraud, J. Le paracétamol: Ami ou ennemi? Actual. Pharm. 2015, 54, 1. [Google Scholar] [CrossRef] [Scilit]
- Lou, H.; Yuan, H.; Ruan, Z.; Jiang, B. Simultaneous Determination of Paracetamol, Pseudoephedrine, Dextrophan and Chlorpheniramine in Human Plasma by Liquid Chromatography–Tandem Mass Spectrometry. J. Chromatogr. B 2010, 878, 682–688. [Google Scholar] [CrossRef] [Scilit]
- Sirajuddin; Khaskheli, A.R.; Shah, A.; Bhanger, M.I.; Niaz, A.; Mahesar, S. Simpler Spectrophotometric Assay of Paracetamol in Tablets and Urine Samples. Spectrochim. Acta Part A Mol. Biomol. Spectrosc. 2007, 68, 747–751. [Google Scholar] [CrossRef] [Scilit]
- Ruengsitagoon, W.; Liawruangrath, S.; Townshend, A. Flow Injection Chemiluminescence Determination of Paracetamol. Talanta 2006, 69, 976–983. [Google Scholar] [CrossRef] [Scilit]
- Gioia, M.G.; Andreatta, P.; Boschetti, S.; Gatti, R. Development and Validation of a Liquid Chromatographic Method for the Determination of Ascorbic Acid, Dehydroascorbic Acid and Acetaminophen in Pharmaceuticals. J. Pharm. Biomed. Anal. 2008, 48, 331–339. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Li, J.; Huang, X.; Shi, W.; Jiang, M.; Tian, L.; Su, M.; Wu, J.; Liu, Q.; Yu, C.; Gu, H. Pt Nanoparticle Decorated Carbon Nanotubes Nanocomposite Based Sensing Platform for the Monitoring of Cell-Secreted Dopamine. Sens. Actuators B Chem. 2021, 330, 129311. [Google Scholar] [CrossRef] [Scilit]
- Haidyrah, A.S.; Sundaresan, P.; Venkatesh, K.; Ramaraj, S.K.; Thirumalraj, B. Fabrication of Functionalized Carbon Nanofibers/Carbon Black Composite for Electrochemical Investigation of Antibacterial Drug Nitrofurantoin. Colloids Surf. A Physicochem. Eng. Asp. 2021, 627, 127112. [Google Scholar] [CrossRef] [Scilit]
- Anvari, L.; Ghoreishi, S.M.; Faridbod, F.; Ganjali, M.R. Electrochemical Determination of Methamphetamine in Human Plasma on a Nanoceria Nanoparticle Decorated Reduced Graphene Oxide (rGO) Glassy Carbon Electrode (GCE). Anal. Lett. 2021, 54, 2509–2522. [Google Scholar] [CrossRef] [Scilit]
- Nigović, B.; Jurić, S.; Mornar, A. Electrochemical Determination of Nepafenac Topically Applied Nonsteroidal Anti-Inflammatory Drug Using Graphene Nanoplatelets-Carbon Nanofibers Modified Glassy Carbon Electrode. J. Electroanal. Chem. 2018, 817, 30–35. [Google Scholar] [CrossRef] [Scilit]
- Deffo, G. A Step-by-Step Guide for Developing and Improving an Electrochemical (Bio)Sensor: A Tutorial Introduction for Beginners. J. Chem. Educ. 2026, 103, 789–802. [Google Scholar] [CrossRef] [Scilit]
- Yanalak, G.; Doganay, F.; Eroglu, Z.; Kucukkececi, H.; Aslan, E.; Ozmen, M.; Bas, S.Z.; Metin, O.; Hatay Patir, I. Ternary Nanocomposites of Mesoporous Graphitic Carbon Nitride/Black Phosphorus/Gold Nanoparticles (Mpg-CN/BP-Au) for Photocatalytic Hydrogen Evolution and Electrochemical Sensing of Paracetamol. Appl. Surf. Sci. 2021, 557, 149755. [Google Scholar] [CrossRef] [Scilit]
- Vomo, L.A.; Deffo, G.; Fotsop, C.G.; Djemmoe, L.G.; Tchieda, V.K.; Eya’ane, F.M.; Njanja, E. Synthesis of Zinc Oxide Nanoparticles Based on Coffee Husks Embedded on Mesoporous Silica for the Sensing of Acetaminophen. ChemElectroChem 2024, 11, e202400088. [Google Scholar] [CrossRef] [Scilit]
- Tonle, I.K.; Ngameni, E.; Walcarius, A. From Clay-to Organoclay-Film Modified Electrodes: Tuning Charge Selectivity in Ion Exchange Voltammetry. Electrochim. Acta 2004, 49, 3435–3443. [Google Scholar] [CrossRef] [Scilit]
- Tonle, I.K.; Ngameni, E.; Njopwouo, D.; Carteret, C.; Walcarius, A. Functionalization of Natural Smectite-Type Clays by Grafting with Organosilanes: Physico-Chemical Characterization and Application to Mercury(Ii) Uptake. Phys. Chem. Chem. Phys. 2003, 5, 4951. [Google Scholar] [CrossRef] [Scilit]
- Lagaly, G.; Ogawa, M.; Dékány, I. Clay Mineral–Organic Interactions. In Developments in Clay Science; Elsevier: Amsterdam, The Netherlands, 2013; Volume 5, pp. 435–505. [Google Scholar]
- Somba, A.V.; Kamgaing, T.; Fotsop, C.G.; Deffo, G.; Nkuigoua, B.W.; Tagne, R.F.T.; Tajeu, K.Y.; Temgoua, R.C.T.; Njanja, E.; Tonlé, I.K. Preparation and Characterization of Alkali Activated Carbon Based Theobroma Cocoa Pods: Application for Electrochemical Determination of Xanthine in Fresh Fish Sample. ChemistrySelect 2024, 9, e202303250. [Google Scholar] [CrossRef] [Scilit]
- Veera Manohara Reddy, Y.; Sravani, B.; Łuczak, T.; Mallikarjuna, K.; Madhavi, G. An Ultra-Sensitive Rifampicin Electrochemical Sensor Based on Titanium Nanoparticles (TiO2) Anchored Reduced Graphene Oxide Modified Glassy Carbon Electrode. Colloids Surf. A Physicochem. Eng. Asp. 2021, 608, 125533. [Google Scholar] [CrossRef] [Scilit]
- Li, M.; Wu, L.; Zhang, Z.; Mai, K. Preparation of ZnO-Supported 13X Zeolite Particles and Their Antimicrobial Mechanism. J. Mater. Res. 2017, 32, 4232–4240. [Google Scholar] [CrossRef] [Scilit]
- Wang, L.; Meng, T.; Sun, J.; Wu, S.; Zhang, M.; Wang, H.; Zhang, Y. Development of Pd/Polyoxometalate/Nitrogen-Doping Hollow Carbon Spheres Tricomponent Nanohybrids: A Selective Electrochemical Sensor for Acetaminophen. Anal. Chim. Acta 2019, 1047, 28–35. [Google Scholar] [CrossRef] [Scilit]
- Dongmo, L.M.; Guenang, L.S.; Jiokeng, S.L.Z.; Kamdem, A.T.; Doungmo, G.; Victor, B.C.; Jović, M.; Lesch, A.; Tonlé, I.K.; Girault, H. A New Sensor Based on an Amino-Montmorillonite-Modified Inkjet-Printed Graphene Electrode for the Voltammetric Determination of Gentisic Acid. Microchim. Acta 2021, 188, 36. [Google Scholar] [CrossRef] [Scilit]
- Ngassa, G.B.P.; Tonlé, I.K.; Ngameni, E. Square Wave Voltammetric Detection by Direct Electroreduction of Paranitrophenol (PNP) Using an Organosmectite Film-Modified Glassy Carbon Electrode. Talanta 2016, 147, 547–555. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Deffo, G.; Tonleu Temgoua, R.C.; Foukmeniok Mbokou, S.; Njanja, E.; Kenfack Tonlé, I.; Ngameni, E. A Sensitive Voltammetric Analysis and Detection of Alizarin Red S onto a Glassy Carbon Electrode Modified by an Organosmectite. Sens. Int. 2021, 2, 100126. [Google Scholar] [CrossRef] [Scilit]
- Ngameni, E.; Tonlé, I.K.; Apohkeng, J.T.; Bouwé, R.G.B.; Jieumboué, A.T.; Walcarius, A. Permselective and Preconcentration Properties of a Surfactant-Intercalated Clay Modified Electrode. Electroanalysis 2006, 18, 2243–2250. [Google Scholar] [CrossRef] [Scilit]
- Sohrabnezhad, S.H.; Mehdipour Moghaddam, M.J.; Salavatiyan, T. Synthesis and Characterization of CuO–Montmorillonite Nanocomposite by Thermal Decomposition Method and Antibacterial Activity of Nanocomposite. Spectrochim. Acta Part A Mol. Biomol. Spectrosc. 2014, 125, 73–78. [Google Scholar] [CrossRef] [Scilit]
- Ihekweme, G.O.; Shondo, J.N.; Orisekeh, K.I.; Kalu-Uka, G.M.; Nwuzor, I.C.; Onwualu, A.P. Characterization of Certain Nigerian Clay Minerals for Water Purification and Other Industrial Applications. Heliyon 2020, 6, e03783. [Google Scholar] [CrossRef] [Scilit]
- Karickhoff, S.W.; Bailey, G.W. Optical Absorption Spectra of Clay Minerals. Clays Clay Miner. 1973, 21, 59–70. [Google Scholar] [CrossRef] [Scilit]
- Voet, D.; Voet, J.G. Biochemistry, 4th ed.; Wiley: Hoboken, NJ, USA, 2011. [Google Scholar]
- Lakowicz, J.R. (Ed.) Principles of Fluorescence Spectroscopy; Springer: Boston, MA, USA, 2006. [Google Scholar]
- Smith, B.C. Infrared Spectral Interpretation: A Systematic Approach; CRC Press: Boca Raton, FL, USA, 1999. [Google Scholar]
- Zhao, L.; Chen, J.; Xiong, N.; Bai, Y.; Yilihamu, A.; Ma, Q.; Yang, S.; Wu, D.; Yang, S.-T. Carboxylation as an Effective Approach to Improve the Adsorption Performance of Graphene Materials for Cu2+ Removal. Sci. Total Environ. 2019, 682, 591–600. [Google Scholar] [CrossRef] [Scilit]
- Mubiayi, M.P.; Muleja, A.A.; Nzaba, S.K.M.; Mamba, B.B. Geochemical and Physicochemical Characteristics of Clay Materials from Congo with Photocatalytic Activity on 4-Nitrophenol in Aqueous Solutions. ACS Omega 2020, 5, 29943–29954. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Madejová, J. FTIR Techniques in Clay Mineral Studies. Vib. Spectrosc. 2003, 31, 1–10. [Google Scholar] [CrossRef] [Scilit]
- Mylarappa, M.; Raghavendra, N.; Bhumika, N.R.; Chaithra, C.H.; Nagalaxmi, B.N.; Shravana Kumara, K.N. Study of ZnO Nanoparticle-Supported Clay Minerals for Electrochemical Sensors, Photocatalysis, and Antioxidant Applications. ChemPhysMater 2024, 3, 83–93. [Google Scholar] [CrossRef] [Scilit]
- Shen, W.; He, H.; Zhu, J.; Yuan, P.; Frost, R.L. Grafting of Montmorillonite with Different Functional Silanes via Two Different Reaction Systems. J. Colloid Interface Sci. 2007, 313, 268–273. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sevimoğlu, O.; Tansel, B. Composition and Source Identification of Deposits Forming in Landfill Gas (LFG) Engines and Effect of Activated Carbon Treatment on Deposit Composition. J. Environ. Manag. 2013, 128, 300–305. [Google Scholar] [CrossRef] [Scilit]
- Towler, B.; Hywel-Evans, D.; Firouzi, M. Failure Modes for Hydrated Bentonite Plugs Used in Well Decommissioning Operations. Appl. Clay Sci. 2020, 184, 105385. [Google Scholar] [CrossRef] [Scilit]
- Khan, A.U.H.; Liu, Y.; Naidu, R.; Fang, C.; Shon, H.K.; Zhang, H.; Dharmarajan, R. Changes in the Aggregation Behaviour of Zinc Oxide Nanoparticles Influenced by Perfluorooctanoic Acid, Salts, and Humic Acid in Simulated Waters. Toxics 2024, 12, 602. [Google Scholar] [CrossRef] [Scilit]
- Somba, A.V.; Njanja, E.; Deffo, G.; Fotsop, C.G.; Yemele Tajeu, K.; Tchangou Njiemou, A.F.; Eya’ane Meva, F.; Kamgaing, T. Evaluation of Silver Nanoparticles Based on Fresh Cocoa Pods (Theobroma Cacao) Extracts as New Potential Electrode Material. J. Chem. 2023, 2023, 6447994. [Google Scholar] [CrossRef] [Scilit]
- Ali, A.; Henda, R.; Fagerberg, R. Effect of Temperature and Discharge Voltage on the Properties of Co-Doped ZnO Thin Films Deposited by Pulsed Electron Beam Ablation. Appl. Surf. Sci. 2017, 422, 1082–1092. [Google Scholar] [CrossRef] [Scilit]
- Li, F.; Li, R.; Feng, Y.; Gong, T.; Zhang, M.; Wang, L.; Meng, T.; Jia, H.; Wang, H.; Zhang, Y. Facile Synthesis of Au-Embedded Porous Carbon from Metal-Organic Frameworks and for Sensitive Detection of Acetaminophen in Pharmaceutical Products. Mater. Sci. Eng. C 2019, 95, 78–85. [Google Scholar] [CrossRef] [Scilit]
- Deffo, G.; Tonleu Temgoua, R.C.; Njanja, E.; Puzari, P. Bionanocomposite Materials for Electroanalytical Applications: Current Status and Future Challenges. Nanoscale Adv. 2024, 6, 4736–4750. [Google Scholar] [CrossRef] [Scilit]
- Tian, K.; Li, C.; Liu, H.; Wang, L. Functionalization of Biochar Using SDS/SAP Nanomicelles Enhanced Its Immobilization Capacity for Dyes and Heavy Metals in Water. Sci. Rep. 2025, 15, 7199. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Teixeira, M.; Marcolino-Junior, L.; Fatibello-Filho, O.; Moraes, F.; Nunes, R. Determination of Analgesics (Dipyrone and Acetaminophen) in Pharmaceutical Preparations by Cyclic Voltammetry at a Copper(II) Hexacyanoferrate(III) Modified Carbon Paste Electrode. CAC 2009, 5, 303–310. [Google Scholar] [CrossRef] [Scilit]
- Qin, X.; Ke, W.; Vazquez, Y.; Lee, I.; Zaera, F. CO Oxidation Catalyzed by Au Dispersed on SBA-15 Modified with TiO2 Films Grown via Atomic Layer Deposition (ALD). Catalysts 2023, 13, 1106. [Google Scholar] [CrossRef] [Scilit]
- González-Meza, O.A.; Larios-Durán, E.R.; Gutiérrez-Becerra, A.; Casillas, N.; Escalante, J.I.; Bárcena-Soto, M. Development of a Randles-Ševčík-like Equation to Predict the Peak Current of Cyclic Voltammetry for Solid Metal Hexacyanoferrates. J. Solid State Electrochem. 2019, 23, 3123–3133. [Google Scholar] [CrossRef] [Scilit]
- Amare, M.; Teklay, W. Voltammetric Determination of Paracetamol in Pharmaceutical Tablet Samples Using Anthraquinone Modified Carbon Paste Electrode. Cogent Chem. 2019, 5, 1576349. [Google Scholar] [CrossRef] [Scilit]
- Deffo, G.; Temgoua, R.C.T.; Tajeu, K.Y.; Njanja, E.; Doungmo, G.; Tonle, I.K.; Ngameni, E. Signal Amplification by Electropolymerization of Alizarin Red S for Improved Diuron Detection at Organosmectite Modified Glassy Carbon Electrode. J. Chin. Chem. Soc. 2022, 69, 349–358. [Google Scholar] [CrossRef] [Scilit]
- Shams, N.; Lim, H.N.; Hajian, R.; Yusof, N.A.; Abdullah, J.; Sulaiman, Y.; Ibrahim, I.; Huang, N.M.; Pandikumar, A. A Promising Electrochemical Sensor Based on Au Nanoparticles Decorated Reduced Graphene Oxide for Selective Detection of Herbicide Diuron in Natural Waters. J. Appl. Electrochem. 2016, 46, 655–666. [Google Scholar] [CrossRef] [Scilit]
- Laviron, E. General Expression of the Linear Potential Sweep Voltammogram in the Case of Diffusionless Electrochemical Systems. J. Electroanal. Chem. Interfacial Electrochem. 1979, 101, 19–28. [Google Scholar] [CrossRef]
- Bard, A.J.; Faulkner, L.R. Electrochemical Methods: Fundamentals and Applications, 2nd ed.; Wiley: New York, NY, USA; Weinheim, Germany, 2001. [Google Scholar]
- Uzun, D.; Tabanlıgil Calam, T. Electrochemical Behavior and Ultrasensitive, Simple and Effective Voltammetric Determination of Acetaminophen Using Modified Glassy Carbon Electrode Based on 4-Hydroxyquinoline-3-carboxylic Acid. Electroanalysis 2023, 35, e202200182. [Google Scholar] [CrossRef] [Scilit]
- Armada, M.P.G.; Vallejo, E.; Villena, C.; Losada, J.; Casado, C.M.; Alonso, B. New Acetaminophen Amperometric Sensor Based on Ferrocenyl Dendrimers Deposited onto Pt Nanoparticles. J. Solid State Electrochem. 2016, 20, 1551–1563. [Google Scholar] [CrossRef] [Scilit]
- Gold, V.; Loening, K.L.; McNaught, A.D.; Shemi, P. The IUPAC Compendium of Chemical Terminology: The Gold Book, 5th ed.; Gold, V., McNaught, A., The International Union of Pure and Applied Chemistry (IUPAC), Eds.; International Union of Pure and Applied Chemistry (IUPAC): Research Triangle Park, NC, USA, 2025. [Google Scholar]
- Teker, T.; Aslanoglu, M. Sensitive and Selective Determination of Paracetamol Using a Composite of Carbon Nanotubes and Nanoparticles of Samarium Oxide and Zirconium Oxide. Microchem. J. 2020, 158, 105234. [Google Scholar] [CrossRef] [Scilit]
- Khairy, M.; Banks, C.E. A Screen-Printed Electrochemical Sensing Platform Surface Modified with Nanostructured Ytterbium Oxide Nanoplates Facilitating the Electroanalytical Sensing of the Analgesic Drugs Acetaminophen and Tramadol. Microchim. Acta 2020, 187, 126. [Google Scholar] [CrossRef] [Scilit]
- Atta, N.F.; Galal, A.; Azab, S.M. Electrochemical Determination of Paracetamol Using Gold Nanoparticles–Application in Tablets and Human Fluids. Int. J. Electrochem. Sci. 2011, 6, 5082–5096. [Google Scholar] [CrossRef] [Scilit]
- Mekgoe, N.; Mabuba, N.; Pillay, K. Graphic Carbon Nitride-SilverPolyvinylpyrrolidone Nanocomposite Modified on a Glassy Carbon Electrode for Detection of Paracetamol. Front. Sens. 2022, 3, 827954. [Google Scholar] [CrossRef] [Scilit]
- Mbokou, S.F.; Pontié, M.; Bouchara, J.-P.; Tchieno, F.M.M.; Njanja, E.; Mogni, A.; Pontalier, P.Y.; Tonle, I.K. Electroanalytical Performance of a Carbon Paste Electrode Modified by Coffee Husks for the Quantification of Acetaminophen in Quality Control of Commercialized Pharmaceutical Tablets. Int. J. Electrochem. 2016, 2016, 1953278. [Google Scholar] [CrossRef] [Scilit]
- Uzun, D. Determination of Paracetamol Based on 3-Amino-4H-1,2,4-triazole Coated Glassy Carbon Surface in Pharmaceutical Sample. Electroanalysis 2021, 33, 1699–1706. [Google Scholar] [CrossRef] [Scilit]
- Calam, T.T. Selective and Sensitive Determination of Paracetamol and Levodopa with Using Electropolymerized 3,5-Diamino-1,2,4-triazole Film on Glassy Carbon Electrode. Electroanalysis 2021, 33, 1049–1062. [Google Scholar] [CrossRef] [Scilit]
- Kondori, T.; Tajik, S.; Akbarzadeh-T, N.; Beitollahi, H.; Graiff, C.; Jang, H.W.; Shokouhimehr, M. Synthesis and Characterization of Bipyridine Cobalt(II) Complex Modified Graphite Screen Printed Electrode: An Electrochemical Sensor for Simultaneous Detection of Acetaminophen and Naproxen. RSC Adv. 2021, 11, 3049–3057. [Google Scholar] [CrossRef] [Scilit]
- Vinoth, S.; Shalini Devi, K.S.; Pandikumar, A. A Comprehensive Review on Graphitic Carbon Nitride Based Electrochemical and Biosensors for Environmental and Healthcare Applications. TrAC Trends Anal. Chem. 2021, 140, 116274. [Google Scholar] [CrossRef] [Scilit]
- Sohouli, E.; Shahdost-Fard, F.; Rahimi-Nasrabadi, M.; Plonska-Brzezinska, M.E.; Ahmadi, F. Introducing a Novel Nanocomposite Consisting of Nitrogen-Doped Carbon Nano-Onions and Gold Nanoparticles for the Electrochemical Sensor to Measure Acetaminophen. J. Electroanal. Chem. 2020, 871, 114309. [Google Scholar] [CrossRef] [Scilit]









| Materials | O% | Na% | Mg% | Al% | Si% | Zn% |
|---|---|---|---|---|---|---|
| Sa(Na) | 43.0 | 1.7 | 2.1 | 13.6 | 39.6 | / |
| ZnONPs-Sa | 48.3 | 0.2 | 0.0 | 10.2 | 40.1 | 1.2 |
| Electrode/Modifier | Method | pH | Medium | Linear Range (µM) | LOD (µM) | Reference |
|---|---|---|---|---|---|---|
| GCE/Sm2O3@ZrO2/NTC | VOC | 7.0 | TP | 0.0037–2.2 | 0.00034 | [56] |
| Yb2O3-SPEs | DPV | 9.0 | TP | 0.25–654 | 0.055 | [57] |
| GCE/mpg-CN/BP-Au | DPV | 7.4 | TP | 0.3–120 | 0.042 | [13] |
| GNM/CPE | DPV | 7.4 | TP | 0.05–270 | 0.0146 | [58] |
| GCE/gCN-AgPVP | VOC | 6.1 | TP | 0.2–100 | 0.079 | [59] |
| EPC-PaT | DPV | 7.4 | TP | 6.6–500 | 3.9 | [60] |
| ZnONPs/SBA-15/GCE | DPV | 5.0 | BRB | 4–32 | 0.11 | [14] |
| 3AT-GCE | DPV | 7.0 | TP | 0.108–89.5 | 0.043 | [61] |
| 4HQ3CA/GC | DPV | 1.0 | BRB | 0.0025–141 | 0.00059 | [53] |
| 35DT-GCE | DPV | 1.5 | HClO4− | 0.3–55 | 0.1 | [62] |
| [Co(5,5′-dmbipy)2(NCS)2]-SPE | DPV | 7.0 | TP | 0.09–325 | 0.005 | [63] |
| Protonated g-C3N4/CTs-GCE | DPV | 7.0 | TP | 1–50 | 0.49 | [64] |
| AuNP/NCNO | DPV | 7.0 | TP | 0.025–35 | 0.009 | [65] |
| GCE/ZnONPs-Sa/Phe | DPV | 2.0 | TP | 0.02–0.28 | 0.00854 | This work |
| Quantity | Africure | Doliprane |
|---|---|---|
| Initial mass of the packet (mg) | 604 | 1088 |
| Mass of the ACOP obtained after weighing (mg) | 597 | 1039 |
| Initial mass of the ACOP (mg) | 500 | 1000 |
| Theoretical mass of ACOP in the tested ACOP (mg) | 494.205 | 957.598 |
| Mass of ACOP determined by GCE/NPZnO-(Sa)/Phe (mg) | 508.24 | 930.594 |
| Recovery rate (%) | 102.84 | 97.18 |
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Wabo, G.C.; Somba, A.V.; Fogang, S.G.; Fotsop, C.G.; Yemene, A.L.D.; Guenang, L.S.; Ngaha, M.C.D.; Deffo, G.; Njanja, E. Development of an Electrochemical Platform Based on Zinc Oxide Nanoparticles Embedded onto Montmorillonite Clay Functionalized with Phenylalanine for the Nano-Sensing of Acetaminophen in Pharmaceutical Tablets. Biosensors 2026, 16, 244. https://doi.org/10.3390/bios16050244
Wabo GC, Somba AV, Fogang SG, Fotsop CG, Yemene ALD, Guenang LS, Ngaha MCD, Deffo G, Njanja E. Development of an Electrochemical Platform Based on Zinc Oxide Nanoparticles Embedded onto Montmorillonite Clay Functionalized with Phenylalanine for the Nano-Sensing of Acetaminophen in Pharmaceutical Tablets. Biosensors. 2026; 16(5):244. https://doi.org/10.3390/bios16050244
Chicago/Turabian StyleWabo, Gildas Calice, Alex Vincent Somba, Sengor Gabou Fogang, Cyrille Ghislain Fotsop, Astree Lottie Djuffo Yemene, Léopoldine Sonfack Guenang, Marcel Cédric Deussi Ngaha, Gullit Deffo, and Evangeline Njanja. 2026. "Development of an Electrochemical Platform Based on Zinc Oxide Nanoparticles Embedded onto Montmorillonite Clay Functionalized with Phenylalanine for the Nano-Sensing of Acetaminophen in Pharmaceutical Tablets" Biosensors 16, no. 5: 244. https://doi.org/10.3390/bios16050244
APA StyleWabo, G. C., Somba, A. V., Fogang, S. G., Fotsop, C. G., Yemene, A. L. D., Guenang, L. S., Ngaha, M. C. D., Deffo, G., & Njanja, E. (2026). Development of an Electrochemical Platform Based on Zinc Oxide Nanoparticles Embedded onto Montmorillonite Clay Functionalized with Phenylalanine for the Nano-Sensing of Acetaminophen in Pharmaceutical Tablets. Biosensors, 16(5), 244. https://doi.org/10.3390/bios16050244

