Diffusion of individual nanoparticles in cylindrical diatom frustule

IF 4.6 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY Nanoscale Advances Pub Date : 2024-10-08 DOI:10.1039/D4NA00576G
Naoki Tomioka, Yusaku Abe and Yu Matsuda
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Abstract

Diatoms are characterised by silica cell walls (frustules), which have highly ordered micro-/nano-structures. As the synthesis of such structures remains challenging, diatom frustules offer a promising alternative to conventional porous particles in micro-/nano-engineering. In particular, for applications in drug delivery systems, biosensors, and filters, an understanding of particle motion inside frustules is of great importance. In this study, we investigated nanoparticle (NP) motions inside diatom frustules using the single particle tracking (SPT) method. For these measurements, the diameter of the NP was about one-tenth smaller than that of the frustule. Inside the frustule, the diffusion motions of the NPs were suppressed, but this suppression was weakened near the exit of the frustule. Moreover, diffusion anisotropy between the axial and radial directions of the frustule was observed. This anisotropy is difficult to detect with ensemble methods; thus, the SPT method is a powerful approach for investigating NP motions in frustules.

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单个纳米粒子在圆柱形硅藻壳体中的扩散。
硅藻的特征是具有高度有序的微/纳米结构的二氧化硅细胞壁(壳斗)。由于这种结构的合成仍然具有挑战性,硅藻球茎为微/纳米工程中传统的多孔颗粒提供了一种很有前途的替代品。特别是在药物输送系统、生物传感器和过滤器等应用中,了解颗粒在褶皱内部的运动非常重要。在这项研究中,我们使用单颗粒跟踪(SPT)方法研究了硅藻微孔内的纳米颗粒(NP)运动。在这些测量中,纳米粒子的直径约为硅藻微囊直径的十分之一。在凹陷内部,NPs 的扩散运动受到抑制,但这种抑制在凹陷出口附近减弱。此外,还观察到凹陷轴向和径向之间的扩散各向异性。这种各向异性很难通过集合方法检测到;因此,SPT 方法是研究 NP 在凹陷中运动的一种有效方法。
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来源期刊
Nanoscale Advances
Nanoscale Advances Multiple-
CiteScore
8.00
自引率
2.10%
发文量
461
审稿时长
9 weeks
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Back cover A rapid one-step synthesis of silver and copper coordinated chlorine functionalized fullerene nanoparticles with enhanced antibacterial activity. A comprehensive review of challenges and advances in exosome-based drug delivery systems. Supramolecular chirality in self-organised systems and thin films Injectable pH-responsive polypeptide hydrogels for local delivery of doxorubicin.
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