ELECTROCHEMICAL NANOSENSORS FOR EARLY DISEASE DIAGNOSIS: A CHEMISTRY-DRIVEN APPROACH TO AFFORDABLE HEALTHCARE

Authors

  • B.N. Chandrashekar Sri Adichunchanagiri First Grade College Affiliated to Hassan University, Channarayapatna – 573116, Hassan, Karnataka, India https://orcid.org/0000-0003-2917-7611
  • Deepika Kuvempu University image/svg+xml
  • B.E. Kumara Swamy Kuvempu University, 577 203, Shivamogga, India

DOI:

https://doi.org/10.59415/ijfas.381

Keywords:

Nanosensors, Disease biomarkers, Redox reactions, Glucose sensor, Cancer detection, Green synthesis.

Abstract

The early diagnosis of diseases significantly enhances the chances of successful treatment and reduces healthcare costs. Electrochemical nanosensors, integrating advances in chemistry, nanotechnology, and materials science, have emerged as powerful tools in clinical diagnostics. These sensors combine high sensitivity, selectivity, rapid response, and portability, making them ideal for point-of-care testing (POCT). This chapter explores the fundamental principles, material designs, sensing mechanisms, and applications of electrochemical nanosensors for early disease diagnosis. Emphasis is placed on how chemistry facilitates the fabrication and optimization of nanosensors tailored for healthcare applications. Furthermore, this work addresses current challenges and future perspectives for translating lab-scale innovations to practical, affordable diagnostic tools aligned with global health goals.

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Author Biographies

  • Deepika, Kuvempu University

    Department of Studies and Research in Industrial Chemistry, Sahyadri Science College, Kuvempu University, 577 203, Shivamogga, India

  • B.E. Kumara Swamy, Kuvempu University, 577 203, Shivamogga, India

    Department of Studies and Research in Industrial Chemistry, Sahyadri Science College, Kuvempu University, 577 203, Shivamogga, India

References

1. C. Wang, L. Wang and S. Chen, Nanoscale, 2021, 13, 456–470.

2. H. Li, Y. Deng and X. Zhang, Nanoscale, 2022, 14, 1245–1258.

3. K. Ahmed, M. A. Ali and S. Kumar, Nanoscale, 2020, 12, 320–332.

4. F. Zhao, Y. Zeng and H. Wang, Nanoscale, 2019, 11, 7654–7665.

5. A. K. Geim and K. S. Novoselov, Nanoscale, 2010, 2, 187–191.

6. S. Iijima, Nanoscale, 1991, 1, 34–38.

7. D. N. Reinhoudt and A. P. F. Turner, Nanoscale, 2018, 10, 19250–19265.

8. Y. Zhang, W. Wang and R. Hu, Nanoscale, 2021, 13, 2375–2386.

9. M. Green and P. O’Brien, Nanoscale, 2006, 8, 30–39.

10. A. Malhotra and S. Kumar, Nanoscale, 2017, 9, 580–593.

11. J. Li, T. Wu and L. Yin, Nanoscale, 2019, 11, 1150–1163.

12. N. Ansari and P. Khosravi, Nanoscale, 2021, 13, 905–916.

13. T. P. Szatrowski and C. F. Nathan, Nanoscale, 2014, 6, 2184–2190.

14. L. Yao, H. Zheng and J. Xu, Nanoscale, 2022, 14, 10945–10957.

15. B. Tang, L. Wu and Q. Li, Nanoscale, 2021, 13, 8373–8385.

16. Y. Liu, R. Huang and D. Li, Nanoscale, 2020, 12, 12250–12262.

17. S. Tiwari and V. Gupta, Nanoscale, 2019, 11, 509–521.

18. Z. Chen, L. Lu and J. Ma, Nanoscale, 2018, 10, 5843–5856.

19. A. Salimian and A. Gholami, Nanoscale, 2020, 12, 904–915.

20. R. A. Khan and F. Ali, Nanoscale, 2021, 13, 8704–8715.

21. S. K. Singh, R. Raj and S. Yadav, Nanoscale, 2022, 14, 12356–12367.

22. D. Kim, J. Park and H. Lee, Nanoscale, 2020, 12, 13456–13468.

23. M. Gao, R. Zhang and L. Sun, Nanoscale, 2021, 13, 1467–1478.

24. P. Sharma and M. Singh, Nanoscale, 2022, 14, 11102–11115.

Published

2026-09-30

How to Cite

ELECTROCHEMICAL NANOSENSORS FOR EARLY DISEASE DIAGNOSIS: A CHEMISTRY-DRIVEN APPROACH TO AFFORDABLE HEALTHCARE. (2026). International Journal of Fundamental and Applied Sciences (IJFAS), 15(3), 14-19. https://doi.org/10.59415/ijfas.381

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