Carbon nano-onions (CNOs) promise to improve the range of applications of carbon materials for electroanalytical applica- tions. In this review, we explore the synthesis, characterization, and electrochemical applications of CNOs. CNO-based sensors present impressive features, including low detection limits in the femtogram per milliliter range, a broad linear detection range spanning up to 7orders of magnitude, exceptional selectivity, reproducibility, and stability. Synthetic methods and characterization techniques for CNOs were thoroughly exam- ined, shedding light on their pivotal role in biosensing technologies. Comparative analyses with other carbon materials underscore CNOs’ competitive performance, either surpassing or matching many counterparts. Despite their relatively recent integration in biosensing applications, CNOs exhibit comparable or superior results concerning other carbon-based materials. Indeed, the incorporation of CNOs into hybrid nanocomposites has shown promising outcomes, indicating a synergistic potential for future advancements in biosensing technologies. Our review provides a broad approach to the application of CNOs to the field, with emphasis on breakthroughs of the last 5years.

The Promise of Carbon Nano‐Onions: Preparation, Characterization and Their Application in Electrochemical Sensing

Pierangelo Gobbo
Penultimo
;
Manuel Antuch
Ultimo
2024-01-01

Abstract

Carbon nano-onions (CNOs) promise to improve the range of applications of carbon materials for electroanalytical applica- tions. In this review, we explore the synthesis, characterization, and electrochemical applications of CNOs. CNO-based sensors present impressive features, including low detection limits in the femtogram per milliliter range, a broad linear detection range spanning up to 7orders of magnitude, exceptional selectivity, reproducibility, and stability. Synthetic methods and characterization techniques for CNOs were thoroughly exam- ined, shedding light on their pivotal role in biosensing technologies. Comparative analyses with other carbon materials underscore CNOs’ competitive performance, either surpassing or matching many counterparts. Despite their relatively recent integration in biosensing applications, CNOs exhibit comparable or superior results concerning other carbon-based materials. Indeed, the incorporation of CNOs into hybrid nanocomposites has shown promising outcomes, indicating a synergistic potential for future advancements in biosensing technologies. Our review provides a broad approach to the application of CNOs to the field, with emphasis on breakthroughs of the last 5years.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11368/3096358
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