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本文引用的文献

1
Nanopore-Based Protein Identification.基于纳米孔的蛋白质鉴定。
J Am Chem Soc. 2022 Feb 16;144(6):2716-2725. doi: 10.1021/jacs.1c11758. Epub 2022 Feb 4.
2
Snapshotting the transient conformations and tracing the multiple pathways of single peptide folding using a solid-state nanopore.利用固态纳米孔捕捉单个肽折叠的瞬态构象并追踪其多种折叠途径。
Chem Sci. 2021 Jan 4;12(9):3282-3289. doi: 10.1039/d0sc06106a.
3
Sapphire-supported nanopores for low-noise DNA sensing.用于低噪声DNA传感的蓝宝石支撑纳米孔
Biosens Bioelectron. 2021 Feb 15;174:112829. doi: 10.1016/j.bios.2020.112829. Epub 2020 Nov 27.
4
Electrochemical Sensing at a Confined Space.受限空间中的电化学传感
Anal Chem. 2020 Apr 21;92(8):5621-5644. doi: 10.1021/acs.analchem.0c00931. Epub 2020 Apr 2.
5
Comparing Current Noise in Biological and Solid-State Nanopores.比较生物纳米孔和固态纳米孔中的电流噪声。
ACS Nano. 2020 Feb 25;14(2):1338-1349. doi: 10.1021/acsnano.9b09353. Epub 2020 Feb 17.
6
Improved Measurement of Proteins Using a Solid-State Nanopore Coupled with a Hydrogel.利用固态纳米孔与水凝胶耦合提高蛋白质测量。
ACS Sens. 2020 Feb 28;5(2):370-376. doi: 10.1021/acssensors.9b01928. Epub 2020 Jan 31.
7
Solid-state nanopore fabrication by automated controlled breakdown.通过自动化控制击穿实现固态纳米孔的制造。
Nat Protoc. 2020 Jan;15(1):122-143. doi: 10.1038/s41596-019-0255-2. Epub 2019 Dec 13.
8
Single-Stranded DNA Translocation Recordings through Solid-State Nanopores on Glass Chips at 10 MHz Measurement Bandwidth.在 10 MHz 测量带宽的玻璃芯片上的固态纳米孔中单链 DNA 转位记录。
ACS Nano. 2019 Sep 24;13(9):10545-10554. doi: 10.1021/acsnano.9b04626. Epub 2019 Sep 3.
9
Detection of Single Proteins with a General Nanopore Sensor.用通用纳米孔传感器检测单一蛋白质。
ACS Sens. 2019 May 24;4(5):1185-1189. doi: 10.1021/acssensors.9b00228. Epub 2019 Mar 15.
10
Wafer-scale fabrication of fused silica chips for low-noise recording of resistive pulses through nanopores.用于通过纳米孔进行电阻脉冲低噪声记录的熔融石英芯片的晶圆级制造。
Nanotechnology. 2019 Jun 28;30(26):265301. doi: 10.1088/1361-6528/ab0e2a. Epub 2019 Mar 8.

晶圆级制造蓝宝石上均匀、微米级、三角形的膜,用于纳米孔中高速蛋白质传感。

Wafer-Scale Fabrication of Uniform, Micrometer-Sized, Triangular Membranes on Sapphire for High-Speed Protein Sensing in a Nanopore.

机构信息

School of Electrical, Computer and Energy Engineering, Arizona State University, Tempe, Arizona85281, United States.

Center for Photonics Innovation, Arizona State University, Tempe, Arizona85281, United States.

出版信息

ACS Appl Mater Interfaces. 2023 Jan 18;15(2):2656-2664. doi: 10.1021/acsami.2c18983. Epub 2023 Jan 4.

DOI:10.1021/acsami.2c18983
PMID:36598264
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9852088/
Abstract

Ultra-low-noise solid-state nanopores are attractive for high-accuracy single-molecule sensing. A conventional silicon platform introduces acute capacitive noise to the system, which seriously limits the recording bandwidth. Recently, we have demonstrated the creation of thin triangular membranes on an insulating crystal sapphire wafer to eliminate the parasitic device capacitance. Uniquely different from the previous triangular etching window designs, here hexagonal windows were explored to produce triangular membranes by aligning to the sapphire crystal within a large tolerance of alignment angles (10-35°). Interestingly, sapphire facet competition serves to suppress the formation of more complex polygons but creates stable triangular membranes with their area insensitive to the facet alignment. Accordingly, a new strategy was successfully established on a 2 in. sapphire wafer to produce chips with an average membrane side length of 4.7 μm, an area of <30 μm for 81% chips, or estimated calculated membrane capacitance as low as 0.06 pF. We finally demonstrated <4 μs high-speed and high-fidelity low-noise protein detection under 250 kHz high bandwidth.

摘要

超低声学纳米孔在高精度单分子传感方面具有吸引力。传统的硅基平台会给系统引入严重的电容噪声,从而极大地限制了记录带宽。最近,我们在绝缘蓝宝石晶圆上展示了制造薄三角膜的方法,以消除寄生器件电容。与之前的三角刻蚀窗口设计不同,这里探索了六边形窗口,通过在 10-35°的较大对准角度容差范围内与蓝宝石晶体对准,来生成三角膜。有趣的是,蓝宝石晶面竞争有助于抑制形成更复杂的多边形,但却能稳定地生成三角形膜,其面积对晶面对准不敏感。因此,我们成功地在 2 英寸蓝宝石晶圆上建立了一种新策略,以生产平均膜边长为 4.7μm、面积小于 30μm(占 81%)的芯片,或估算出的膜电容低至 0.06pF。最后,我们在 250kHz 的高带宽下,实现了<4μs 的高速、高保真度、低噪声蛋白质检测。