High-bandwidth low-current measurement system for automated and scalable probing of tunnel junctions in liquids

Author:

Raja Shyamprasad N.1ORCID,Jain Saumey12ORCID,Kipen Javier3ORCID,Jaldén Joakim3ORCID,Stemme Göran1ORCID,Herland Anna24ORCID,Niklaus Frank1ORCID

Affiliation:

1. Division of Micro and Nanosystems, KTH Royal Institute of Technology 1 , Stockholm SE-100 44, Sweden

2. Division of Nanobiotechnology, SciLife Lab, KTH Royal Institute of Technology 2 , Stockholm SE-100 44, Sweden

3. Division of Information Science and Engineering, KTH Royal Institute of Technology 3 , Stockholm SE-100 44, Sweden

4. AIMES-Center for the Advancement of Integrated Medical and Engineering Sciences, Department of Neuroscience, Karolinska Institute 4 , SE-171 77 Solna, Sweden

Abstract

Tunnel junctions have long been used to immobilize and study the electronic transport properties of single molecules. The sensitivity of tunneling currents to entities in the tunneling gap has generated interest in developing electronic biosensors with single molecule resolution. Tunnel junctions can, for example, be used for sensing bound or unbound DNA, RNA, amino acids, and proteins in liquids. However, manufacturing technologies for on-chip integrated arrays of tunnel junction sensors are still in their infancy, and scalable measurement strategies that allow the measurement of large numbers of tunneling junctions are required to facilitate progress. Here, we describe an experimental setup to perform scalable, high-bandwidth (>10 kHz) measurements of low currents (pA–nA) in arrays of on-chip integrated tunnel junctions immersed in various liquid media. Leveraging a commercially available compact 100 kHz bandwidth low-current measurement instrument, we developed a custom two-terminal probe on which the amplifier is directly mounted to decrease parasitic probe capacitances to sub-pF levels. We also integrated a motorized three-axis stage, which could be powered down using software control, inside the Faraday cage of the setup. This enabled automated data acquisition on arrays of tunnel junctions without worsening the noise floor despite being inside the Faraday cage. A deliberately positioned air gap in the fluidic path ensured liquid perfusion to the chip from outside the Faraday cage without coupling in additional noise. We demonstrate the performance of our setup using rapid current switching observed in electromigrated gold tunnel junctions immersed in deionized water.

Funder

Vetenskapsrådet

Stiftelsen för Strategisk Forskning

Ragnar Holm Foundation at KTH

Publisher

AIP Publishing

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