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悬浮纳米通道谐振器阵列与压阻式传感器用于溶液中纳米颗粒的高通量称重。

Suspended Nanochannel Resonator Arrays with Piezoresistive Sensors for High-Throughput Weighing of Nanoparticles in Solution.

机构信息

Koch Institute for Integrative Cancer Research, Massachusetts Institute of Technology, Cambridge, Massachusetts 02142, United States.

Université Grenoble Alpes, CEA, LETI, 38000 Grenoble, France.

出版信息

ACS Sens. 2020 Apr 24;5(4):1230-1238. doi: 10.1021/acssensors.0c00394. Epub 2020 Apr 1.

Abstract

As the use of nanoparticles is expanding in many industrial sectors, pharmaceuticals, cosmetics among others, flow-through characterization techniques are often required for in-line metrology. Among the parameters of interest, the concentration and mass of nanoparticles can be informative for yield, aggregates formation or even compliance with regulation. The Suspended Nanochannel Resonator (SNR) can offer mass resolution down to the attogram scale precision in a flow-through format. However, since the readout has been based on the optical lever, operating more than a single resonator at a time has been challenging. Here we present a new architecture of SNR devices with piezoresistive sensors that allows simultaneous readout from multiple resonators. To enable this architecture, we push the limits of nanofabrication to create implanted piezoresistors of nanoscale thickness (∼100 nm) and implement an algorithm for designing SNRs with dimensions optimized for maintaining attogram scale precision. Using 8-in. processing technology, we fabricate parallel array SNR devices which contain ten resonators. While maintaining a precision similar to that of the optical lever, we demonstrate a throughput of 40 000 particles per hour-an order of magnitude improvement over a single device with an analogous flow rate. Finally, we show the capability of the SNR array device for measuring polydisperse solutions of gold particles ranging from 20 to 80 nm in diameter. We envision that SNR array devices will open up new possibilities for nanoscale metrology by measuring not only synthetic but also biological nanoparticles such as exosomes and viruses.

摘要

随着纳米粒子在许多工业领域(如制药、化妆品等)中的应用不断扩大,在线计量通常需要使用直通式特征描述技术。在感兴趣的参数中,纳米粒子的浓度和质量对于产量、聚集体形成甚至法规合规性都很有参考价值。悬浮纳米通道谐振器 (SNR) 可以提供质量分辨率,达到纳克级精度的直通式格式。然而,由于读取是基于光学杠杆,同时操作多个谐振器一直具有挑战性。在这里,我们提出了一种具有压阻传感器的 SNR 器件的新架构,该架构允许从多个谐振器同时进行读取。为了实现这种架构,我们将纳米制造技术推向极限,以创建纳米级厚度(约 100nm)的嵌入式压阻器,并实施了一种用于设计 SNR 的算法,其尺寸经过优化,可保持纳克级精度。使用 8 英寸的处理技术,我们制造了包含十个谐振器的并行阵列 SNR 器件。在保持类似于光学杠杆的精度的同时,我们展示了每小时 40,000 个颗粒的吞吐量-这是类似流速的单个器件的 10 倍。最后,我们展示了 SNR 阵列器件测量直径为 20 至 80nm 的金粒子的多分散溶液的能力。我们设想 SNR 阵列器件将通过测量不仅是合成的而且是生物纳米粒子(如外泌体和病毒),为纳米级计量学开辟新的可能性。

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