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通过热退火金纳米粒子在膜中制备可扩展的纳米孔。

Scalable fabrication of nanopores in membranes via thermal annealing of Au nanoparticles.

机构信息

School of Mechanical Engineering, Korea University, 145 Anam-ro, Seongbuk-gu, Seoul, 136-713, Republic of Korea.

出版信息

Nanoscale. 2018 Dec 21;10(47):22623-22634. doi: 10.1039/c8nr06441e. Epub 2018 Nov 28.

Abstract

Nanopores are promising candidates for versatile sensing of micro- and nanomaterials. However, the fabrication of isolated nanopores with optimal dimensions and distributions requires complex processes that involve the use of high-cost equipment. Herein, we report a scalable fabrication of isolated conical nanopores with adjustable dimensions and distribution densities on a SiN membrane via thermal annealing of Au nanoparticles (AuNPs). The AuNP-dispersed solution was dropped and evaporated on the membrane, while the pH value and concentration of AuNPs controlled the zeta potential difference and the distribution density of the attached AuNPs. The optimized thermal annealing directly fabricated conical nanopores at the positions of the AuNPs because of the quasi-liquid state of the AuNPs and their interaction with the SiN lattices. The 50, 100, and 200 nm AuNPs enabled one-step fabrication of 8-, 26-, and 63 nm nanopores, while the inter-distances and distribution densities were controllable over the membrane. The physicochemical analyses elucidated the underlying mechanisms of direct nanopore formation, and the precise adjustment of thermal annealing developed three unique nanopores that differently interacted with the AuNPs: (1) Au-residue-embedded nanopores, (2) isolated nanopores, and (3) nanopores with the remaining Au droplet. The AuNPs-driven fabrication of versatile nanopore membranes enables new applications for sensing and transporting small-scale materials.

摘要

纳米孔是微纳材料多功能传感的有前途的候选者。然而,具有最佳尺寸和分布的孤立纳米孔的制造需要涉及使用昂贵设备的复杂过程。在此,我们通过金纳米粒子 (AuNP) 的热退火,在 SiN 膜上报告了具有可调节尺寸和分布密度的孤立锥形纳米孔的可扩展制造。AuNP 分散溶液被滴落在膜上并蒸发,而 AuNPs 的 pH 值和浓度控制着附着的 AuNPs 的zeta 电位差和分布密度。优化的热退火由于 AuNPs 的准液态及其与 SiN 晶格的相互作用,直接在 AuNP 的位置制造了锥形纳米孔。50、100 和 200nm 的 AuNP 能够一步制造 8、26 和 63nm 的纳米孔,而膜上的孔间距和分布密度是可控的。物理化学分析阐明了直接纳米孔形成的潜在机制,并且热退火的精确调整开发了三种与 AuNP 不同相互作用的独特纳米孔:(1)Au 残留物嵌入纳米孔,(2)孤立纳米孔,和(3)具有剩余 Au 液滴的纳米孔。AuNP 驱动的多功能纳米孔膜的制造为传感和输送小尺寸材料开辟了新的应用。

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