Towards single-cell pulsed EPR using VCO-based EPR-on-a-chip detectors

Author:

Hassan Mohamed Atef1,Kern Michal1,Chu Anh12,Kalra Gatik3,Shabratova Ekaterina4,Tsarapkin Aleksei5,MacKinnon Neil3,Lips Klaus4,Teutloff Christian6,Bittl Robert6,Korvink Jan Gerrit3,Anders Jens12

Affiliation:

1. Institute of Smart Sensors, University of Stuttgart , Pfaffenwaldring 47, 70569 Stuttgart , Germany

2. Center for Integrated Quantum Science and Technology , Stuttgart and Ulm , Germany

3. Institute of Microstructure Technology, Karlsruhe Institute of Technology , Karlsruhe , Germany

4. Helmholtz-Zentrum Berlin für Materialien und Energie, Department Spins in Energy Conversion and Quantum Information Science (ASPIN) , Hahn-Meitner-Platz 1, 14109 Berlin , Germany

5. Ferdinand-Braun-Institut gGmbH, Leibniz-Institut für Höchstfrequenztechnik , Gustav-Kirchhoff-Straße 4, 12489 Berlin , Germany

6. Fachbereich Physik, Freie Universität Berlin , Arnimallee 14, 14195 Berlin , Germany

Abstract

Abstract Electron paramagnetic resonance (EPR) is the gold standard for studying paramagnetic species. As an example, in structural biology, it allows to extract information about distance distributions on the nanometer scale via site-directed spin labeling. Conventional pulsed EPR of biological samples is currently limited to relatively large sample concentrations and cryogenic temperatures, mainly due to low sensitivity and the significant dead time associated with conventional resonator-based EPR setups, essentially precluding in-cell EPR under physiological conditions. This paper presents our latest progress toward single-cell pulsed EPR using VCO-based EPR-on-a-chip (EPRoC) sensors. Together with an analytical model for VCO-based pulsed EPR, we present an experimental scheme to perform dead-time-free pulsed EPR measurements using EPRoC detectors. The proposed scheme is validated using extensive numerical simulations and proof-of-concept experiments on the spin dynamics of an organic radical at room temperature using a custom-designed EPRoC detector operating in the Ka-band around 30.4 GHz. Additionally, we discuss methods to improve the excitation field homogeneity and sample handling through chip post-processing and custom-designed microfluidics. Finally, we present our progress towards compact, portable pulsed EPR spectrometers incorporating EPRoC detectors, microfluidics, and custom-designed permanent magnets. Such portable EPR spectrometers can pave the way toward new EPR applications, including point-of-care diagnostics.

Funder

German Research Foundation

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Design of Compact Current-Drive Power Amplifiers for the Efficient Control of Spin Qubits;2023 30th IEEE International Conference on Electronics, Circuits and Systems (ICECS);2023-12-04

2. Dead Time-Free Detection of NMR Signals Using Voltage-Controlled Oscillators;Applied Magnetic Resonance;2023-08-29

3. Electrically Detected Magnetic Resonance on a Chip (EDMRoC) for Analysis of Thin-Film Silicon Photovoltaics;Magnetochemistry;2023-07-15

4. Chip-Integrated Spin Detection for Biomedical Applications;Biomedical Electronics, Noise Shaping ADCs, and Frequency References;2012-02-24

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