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纳米组装界面用于动力学调整。

Nanoassembled Interface for Dynamics Tailoring.

机构信息

Beijing National Laboratory for Molecular Sciences, Key Laboratory of Analytical Chemistry for Living Biosystems Institute of Chemistry, Chinese Academy of Sciences, #2 Zhongguancun, North First Street, Beijing 100190, China.

University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Acc Chem Res. 2021 Jan 5;54(1):35-45. doi: 10.1021/acs.accounts.0c00476. Epub 2020 Oct 12.

Abstract

The properties and performance of solid nanomaterials in heterogeneous chemical reactions are significantly influenced by the interface between the nanomaterial and environment. Oriented tailoring of interfacial dynamics, that is, modifying the shared boundary for mass and energy exchange has become a common goal for scientists. Although researchers have designed and constructed an abundance of nanomaterials with excellent performances for the tailoring of reaction dynamics, a complete understanding of the mechanism of nanomaterial-environment interfacial interaction still remains elusive. To predictively understand the nanomaterial-environment relationship over a wide range of time scale, a deep and dynamic insight is required urgently. In this Account, our recent works including advances in the design and construction of nanoassembled interfaces and understanding the dynamic interaction mechanisms between different combinations of nanoparticle (NP) assembly environment interfaces for tailoring the reaction dynamics.NP assemblies with well-defined structures and compositions are inherently suitable for replacing bulk-type nanomaterials for the research on interfaces. We primarily introduced two most relevant nanoassembled surfaces that were fabricated in our laboratory, namely, ordered self-assembly interface and animate nanoassembled interface. The disordered nanoparticles can be arranged into an ordered superlattice based on the self-assembly method and patterned-assembly method. In addition, we used NPs with flexible properties to construct three-dimensional (3D) animate assemblies. On the basis of a thorough understanding of the structure-property correlation, a series of nanoassembled interfaces with various structures have been developed for practice. In comparison with traditional nanomaterial-environment interfaces, the nanoassembled interfaces can change the mode of contact between the nanomaterial and environment, thereby maximizing the number of active sites and driving interferent/product off the nanoassembled interface. The geometry, porosity, and deformable/motional properties in the nanoassembled interface can be applied to enhance the mass transfer dynamics in the chemical reaction. Moreover, the nanoassembled interface can be used to strengthen the affinity between the NP assemblies and targets, thereby enhancing the adsorption efficiency. As shown in these examples, the nanoassembled interface can effectively change the speed, intensity, and mode of interactions between the NP assemblies and environment in spatiotemporal scales.The overall performance of the interfacial dynamics can be improved by the nanoassembled interface, thereby facilitating practical application in flowing systems. We have extended the applications of nanoassembled interfaces from simple adsorption to complex reactions in flowing systems, including in vivo magnetic resonance imaging, electrocatalytic gas evolution reaction, bacterial capture, sensing of exhaled volatile organic compounds, and heterogeneous catalysis. Our current endeavors to explore the applicability of animate nanoassembled interfaces for dynamic tailoring have widened the scope of research, and attempts to construct intelligent interfaces for applications are underway.

摘要

固态纳米材料在多相化学反应中的性能和行为受到纳米材料与环境之间界面的显著影响。因此,定向调控界面动力学,即修饰用于质量和能量交换的共享边界,已成为科学家们的共同目标。尽管研究人员设计并构建了大量具有优异反应动力学调控性能的纳米材料,但对纳米材料-环境界面相互作用机制的全面理解仍然难以捉摸。为了在广泛的时间尺度上预测性地理解纳米材料-环境关系,迫切需要深入和动态的洞察力。在本综述中,我们介绍了最近的工作,包括设计和构建纳米组装界面的进展,以及理解不同组合的纳米颗粒(NP)组装环境界面之间的动态相互作用机制,这些组合用于调控反应动力学。具有明确结构和组成的 NP 组装体本身就适合替代块状纳米材料,用于研究界面。我们主要介绍了我们实验室中制备的两种最相关的纳米组装表面,即有序自组装界面和动态纳米组装界面。无序的纳米颗粒可以通过自组装方法和图案组装方法排列成有序的超晶格。此外,我们还使用具有柔性性质的 NPs 构建了三维(3D)动态组装体。在深入了解结构-性能相关性的基础上,我们已经开发了一系列具有各种结构的纳米组装界面,用于实际应用。与传统的纳米材料-环境界面相比,纳米组装界面可以改变纳米材料与环境之间的接触方式,从而最大限度地增加活性位点的数量,并将干扰物/产物从纳米组装界面上驱离。纳米组装界面的几何形状、孔隙率和可变形/运动特性可用于增强化学反应中的传质动力学。此外,纳米组装界面可以增强 NP 组装体与目标之间的亲和力,从而提高吸附效率。如这些示例所示,纳米组装界面可以有效地改变纳米组装体与环境在时空尺度上相互作用的速度、强度和模式。通过纳米组装界面可以改善界面动力学的整体性能,从而促进在流动系统中的实际应用。我们已经将纳米组装界面的应用从简单的吸附扩展到流动系统中的复杂反应,包括体内磁共振成像、电催化析气反应、细菌捕获、呼气挥发性有机化合物的传感和多相催化。我们目前正在努力探索动态调控的动态纳米组装界面的适用性,拓宽了研究范围,并正在尝试构建用于应用的智能界面。

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