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基于可持续合成黑色素纳米颗粒的供体-受体喷墨打印分子结中的增强光化学活性和超快光载流子动力学

Enhanced photochemical activity and ultrafast photocarrier dynamics in sustainable synthetic melanin nanoparticle-based donor-acceptor inkjet-printed molecular junctions.

作者信息

DeMarco Max, Ballard Matthew, Grage Elinor, Nourigheimasi Farnoush, Getter Lillian, Shafiee Ashkan, Ghadiri Elham

机构信息

Chemistry Department, Wake Forest University, USA.

Center for Functional Materials, Wake Forest University, USA.

出版信息

Nanoscale. 2023 Sep 14;15(35):14346-14364. doi: 10.1039/d3nr02387g.

Abstract

Melanin is a stable, widely light-absorbing, photoactive, and biocompatible material viable for energy conversion, photocatalysis, and bioelectronic applications. To achieve multifunctional nanostructures, we synthesized melanin nanoparticles of uniform size and controlled chemical composition (dopamelanin and eumelanin) and used them with titanium dioxide to fabricate donor-acceptor bilayers. Their size enhances the surface-to-volume ratio important for any surface-mediated functionality, such as photocatalysis, sensing, and drug loading and release, while controlling their chemical composition enables to control the film's functionality and reproducibility. Inkjet printing uniquely allowed us to control the deposited amount of materials with minimum ink waste suitable for reproducible materials deposition. We studied the photochemical characteristics of the donor-acceptor melanin-TiO nanostructured films photocatalytic degradation of methylene blue dye under selective UV-NIR and Vis-NIR irradiation conditions. Under both irradiation conditions, they exhibited photocatalytic characteristics superior to pure melanin and, under UV-NIR irradiation, superior to TiO alone; TiO is photoactive only under UV irradiation. The enhanced photocatalytic characteristics of the melanin-TiO nanostructured bilayer films, particularly when excited by visible light, point to charge separation at the melanin-TiO interface as a possible mechanism. We performed ultrafast laser spectroscopy to investigate the photochemical characteristics of pure melanin and the melanin-TiO constructs and found that their time-resolved photoexcited spectral patterns differ. We performed singular value decomposition analysis to quantitatively deconvolute and compare the dynamics of photochemical processes for melanin and melanin-TiO heterostructures. This observation supports electronic interactions, namely, interfacial charge separation at the melanin and TiO interface. The excited-state relaxation in melanin-TiO increases markedly from 5 ps to 400 ps. The results are remarkable for the future intriguing application of melanin-based constructs for bioelectronics and energy conversion.

摘要

黑色素是一种稳定、广泛吸收光、具有光活性且生物相容的材料,适用于能量转换、光催化和生物电子应用。为了实现多功能纳米结构,我们合成了尺寸均匀且化学成分可控(多巴黑素和真黑素)的黑色素纳米颗粒,并将它们与二氧化钛一起用于制备供体-受体双层结构。它们的尺寸提高了对于任何表面介导功能(如光催化、传感以及药物负载和释放)都很重要的表面积与体积比,同时控制其化学成分能够控制薄膜的功能和可重复性。喷墨打印独特地使我们能够以最少的墨水浪费来控制材料的沉积量,适合可重复的材料沉积。我们研究了供体-受体黑色素-TiO纳米结构薄膜在选择性紫外-近红外和可见-近红外辐照条件下对亚甲基蓝染料的光催化降解的光化学特性。在这两种辐照条件下,它们都表现出优于纯黑色素的光催化特性,并且在紫外-近红外辐照下,优于单独的TiO;TiO仅在紫外光照射下具有光活性。黑色素-TiO纳米结构双层薄膜增强的光催化特性,特别是在可见光激发时,表明黑色素-TiO界面处的电荷分离可能是一种机制。我们进行了超快激光光谱研究纯黑色素和黑色素-TiO结构的光化学特性,发现它们的时间分辨光激发光谱模式不同。我们进行了奇异值分解分析,以定量解卷积并比较黑色素和黑色素-TiO异质结构光化学过程的动力学。这一观察结果支持了电子相互作用,即在黑色素和TiO界面处的界面电荷分离。黑色素-TiO中的激发态弛豫从5皮秒显著增加到400皮秒。这些结果对于基于黑色素的结构在生物电子学和能量转换方面未来有趣的应用具有重要意义。

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