Highly sensitive single-molecule detection of macromolecule ion beams

Author:

Strauß Marcel1ORCID,Shayeghi Armin12ORCID,Mauser Martin F. X.1ORCID,Geyer Philipp1ORCID,Kostersitz Tim1ORCID,Salapa Julia1,Dobrovolskiy Oleksandr1ORCID,Daly Steven3ORCID,Commandeur Jan3,Hua Yong4,Köhler Valentin4,Mayor Marcel4ORCID,Benserhir Jad5ORCID,Bruschini Claudio5ORCID,Charbon Edoardo5ORCID,Castaneda Mario6,Gevers Monique6,Gourgues Ronan6ORCID,Kalhor Nima6ORCID,Fognini Andreas6ORCID,Arndt Markus1ORCID

Affiliation:

1. Faculty of Physics and Vienna Doctoral School of Physics (VDSP) and Vienna Center for Quantum Science and Technology (VCQ), University of Vienna, Boltzmanngasse 5, A-1090 Vienna, Austria.

2. Institute for Quantum Optics and Quantum Information (IQOQI) Vienna, Austrian Academy of Sciences, Boltzmanngasse 3, A-1090 Vienna, Austria.

3. MSVision, Televisieweg 40, 1322 AM Almere, The Netherlands.

4. Department of Chemistry, University of Basel, St. Johannsring 19, CH-4056 Basel, Switzerland.

5. Advanced Quantum Architecture Laboratory, EPFL, Rue de la Maladière 71b, CH-2002 Neuchâtel, Switzerland.

6. Single Quantum, Rotterdamseweg 394, 2629 HH, Delft, The Netherlands.

Abstract

The analysis of proteins in the gas phase benefits from detectors that exhibit high efficiency and precise spatial resolution. Although modern secondary electron multipliers already address numerous analytical requirements, additional methods are desired for macromolecules at energies lower than currently used in post-acceleration detection. Previous studies have proven the sensitivity of superconducting detectors to high-energy particles in time-of-flight mass spectrometry. Here, we demonstrate that superconducting nanowire detectors are exceptionally well suited for quadrupole mass spectrometry and exhibit an outstanding quantum yield at low-impact energies. At energies as low as 100 eV, the sensitivity of these detectors surpasses conventional ion detectors by three orders of magnitude, and they offer the possibility to discriminate molecules by their impact energy and charge. We demonstrate three developments with these compact and sensitive devices, the recording of 2D ion beam profiles, photochemistry experiments in the gas phase, and advanced cryogenic electronics to pave the way toward highly integrated detectors.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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