Barbero Francesco, Destro Elena, Bellone Aurora, Di Lorenzo Ludovica, Brunella Valentina, Perrone Guido, Damin Alessandro, Fenoglio Ivana
Department of Chemistry, University of Torino Torino Italy
Department of Electronics and Telecommunications, Politecnico di Torino Torino Italy.
Nanoscale Adv. 2025 Jan 8;7(5):1391-1404. doi: 10.1039/d4na00923a. eCollection 2025 Feb 25.
Hydrothermal carbonization (HTC) of carbohydrates has been reported as a sustainable and green technique to produce carbonaceous micro- and nano-materials. These materials have been developed for several applications, including catalysis, separation science, metal ion adsorption and nanomedicine. Carbon nanoparticles (CNPs) obtained through HTC are particularly interesting for the latter application since they exhibit photothermal properties when irradiated with near-infrared (NIR) light, act as an antioxidant by scavenging reactive oxygen species (ROS), and present good colloidal stability and biocompatibility. However, due to the highly disordered structure, there is still a poor understanding of the mechanism of synthesis of CNPs. Consequently, the modulation of the CNP properties by controlling the synthetic parameters is still a challenge. In this work, a novel and simplified HTC synthetic strategy to obtain non-aggregated glucose derived CNPs in the 15-150 nm size range with precise control of the diameter is presented, together with an advance in the understanding of the reaction mechanism behind the synthesis. Modifications of the synthetic parameters and a post-synthesis hydrothermal process were applied to increase the bulk order of CNPs, resulting in an increase of the photothermal and ROS scavenging activities, without affecting the morphological and colloidal properties of the nanomaterial.
碳水化合物的水热碳化(HTC)已被报道为一种可持续的绿色技术,用于生产碳质微纳材料。这些材料已被开发用于多种应用,包括催化、分离科学、金属离子吸附和纳米医学。通过HTC获得的碳纳米颗粒(CNP)在后者的应用中特别有趣,因为它们在近红外(NIR)光照射下表现出光热特性,通过清除活性氧(ROS)充当抗氧化剂,并且具有良好的胶体稳定性和生物相容性。然而,由于结构高度无序,对CNP的合成机制仍了解不足。因此,通过控制合成参数来调节CNP的性质仍然是一个挑战。在这项工作中,提出了一种新颖且简化的HTC合成策略,以获得尺寸范围在15 - 150 nm且直径可精确控制的非聚集葡萄糖衍生的CNP,同时在理解合成背后的反应机制方面取得了进展。通过改变合成参数和进行合成后水热过程来增加CNP的整体有序性,从而提高光热和ROS清除活性,而不影响纳米材料的形态和胶体性质。