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Ion Transport on Phased Radiofrequency Carpets in Xenon Gas

T0 review · 3 major / 4 minor · reviewed 2026-08-09 · deepseek-v4-flash

Pith's one-line read Four-phase RF carpet transports heavy ions through xenon gas at up to 600 mbar, a pressure record for RF ion sweeping.

desk verdict First real demonstration of four-phase RF carpet transport in xenon at 600 mbar, with the quantitative efficiency undercut by missing error bars and an unvalidated blocker subtraction. read the letter →

arxiv 2501.18690 v1 pith:TVVJUFL7 submitted 2025-01-30 physics.ins-det hep-ex

classification physics.ins-dethep-ex
keywords RFcarpetiontransportxenongasfour-phasecesiumionsbariumtaggingneutrinolessdouble-betadecayhigh-pressure
verification ladder T0 review T1 audit T2 compute T3 formal

The pith

A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.

The reading

Neutrinoless double-beta decay searches in xenon gas need a way to catch the daughter barium ion and move it to a sensor without gas flow. This paper reports that a four-phase radiofrequency carpet can do that job in xenon at pressures up to 600 mbar, far above the usual regime for RF ion transport in gases. Using 160-micron-pitch concentric electrodes driven at about 2 MHz with 90-degree phase steps, the device levitates cesium ions (a stand-in for barium) and sweeps them laterally to a collection ring. Transport efficiency rises with RF voltage, reverses direction when the phase order reverses, and agrees qualitatively with hard-sphere trajectory simulations. If the result holds, it opens a route to concentrating barium daughters on single-ion sensors inside high-pressure xenon detectors.

What carries the argument

The load-bearing object is the four-phase RF carpet: 264 concentric copper ring electrodes with 160 µm pitch, connected through vias into four interleaved phase groups. Adjacent electrodes receive the same ~2.09 MHz RF sine, phase-shifted by 90 degrees per step, so the phase advances continuously around the surface. The oscillating field produces a repulsive effective (pseudo-)potential that levitates ions above the carpet, and the lateral phase gradient sweeps them outward; a DC push field presses ions toward the carpet to balance levitation, and a biased collection ring captures them. The key identity is the pseudo-potential $$V = \frac{$q^{2}$}{m($D^{2}$ + \tilde{\$\Omega$}^2)} \frac{1}{2}\left(\frac{2\pi}{N p}\right)^2 \left(\frac{V_{pp}}{2}\right)^2 \exp\left(-\frac{4\pi}{N p}y\right) + qE_{\text{push}}y,$$ which shows the repulsive force is set by ion charge-to-mass ratio, the pitch $p$, the number of phases $N$, the RF amplitude $V_{pp}$, and the collision-damped frequency. This formula is what ties the observed pressure and voltage trends to the device geometry.

What would settle it

Replace the single collection ring with position-resolved collection segments or an imaging readout and measure where ions land as a function of RF phase and amplitude; if a substantial RF-dependent current appears at the ring while no ions are levitating above the carpet, or if the 180-degree phase configuration (which cannot produce a traveling wave) yields a comparable ring current, the transport-efficiency attribution is falsified.

Watch

Extended reading notes

Core claim

The paper's central claim is that an N-phase RF carpet with N=4 can provide efficient lateral transport of heavy ions in moderate-pressure xenon gas, demonstrated here for Cs+ between 200 and 600 mbar, with the strongest efficiencies at the highest tested RF amplitudes. This is presented as the first demonstration of its kind and, to the authors' knowledge, the highest-pressure operation of an ion-sweeping RF carpet. The phase-direction reversal and the voltage-dependent efficiency are taken as evidence that the measured ring current is carried by the RF traveling wave rather than by drift or diffusion. The measured efficiencies are qualitatively reproduced by hard-sphere ion-trajectory simulations, while quantitative agreement is limited mainly by poorly known Cs+/Xe clustering and the resulting pressure-dependent mobility and cross sections. The work is framed as a proof of principle for collecting barium daughters in future high-pressure xenon neutrinoless double-beta decay detectors.

Load-bearing premise

The efficiency numbers assume that every ion reaching the collection ring got there by surfing on the RF traveling wave, because the blocker electrode and the RF-off subtraction are taken to remove all other collection paths; if either leaks, the quoted efficiencies are too high.

Editorial extensions

If this is right

  • If the pressure ceiling is set only by the carpet's insulating-material breakdown, then raising the breakdown voltage or shrinking the pitch extends the method toward the 5-10 bar region where barium tagging would operate.
  • The demonstrated phase-direction reversal gives a control handle: swapping the phase order routes ions inward or outward, so a carpet can concentrate ions to a central sensor or push them to an outer ring.
  • Because the paper finds Cs+ transport a conservative proxy for Ba2+, a barium-tagging scheme can build on the same carpet technology without a separate transport mechanism.
  • Quantitative predictions in high-pressure xenon will need clustering-aware mobilities and collision cross sections rather than low-pressure measured values.
  • Finer-pitch carpets, already prototyped at 20 µm, should push efficient transport to several atmospheres if the qualitative simulation trends hold.

Reading between the lines

Editorial extensions of the paper, not claims the author makes directly.

  • The observed efficiency exceeding the clustering-inclusive simulation at the highest pressures hints that cluster formation, by increasing effective ion mass, may actually aid RF confinement; a dedicated measurement of [CsXe]+ fraction as a function of pressure would test this directly.
  • If the carpet's polyimide dielectric is the true voltage limit, then alternative insulating materials or thicker dielectric coatings may buy more transport margin than further pitch reduction alone, a comparison the paper does not make.
  • The outward-sweeping geometry used here (collection on an outer ring) is the mirror of the inward-sweeping geometry needed for a central sensor; whether the demonstrated efficiency transfers depends on edge effects and the absence of a central hole, which the paper leaves to future devices.
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Editorial analysis

A structured set of objections, weighed in public.

Desk editor's note, referee report, and a circularity audit.

Referee Report

3 major / 4 minor

Summary. The paper reports a four-phase RF carpet with 160 µm pitch operated in xenon gas at 200-600 mbar, using a Cs+ thermionic ion source to demonstrate lateral ion transport to a collection ring. Transport efficiency is measured as a function of RF amplitude, gas pressure, and inter-electrode phase difference, with a direction reversal when the phase order is reversed. The measured efficiencies are compared with SIMION hard-sphere simulations under three cross-section models, and the authors conclude that efficient lateral transport of heavy ions in moderate-pressure xenon is demonstrated for the first time, motivating future barium-tagging applications.

Significance. The reported result is significant if it holds: it extends RF carpet transport from the roughly 100 mbar helium regime to 600 mbar xenon, which is directly relevant to the NEXT collaboration's barium-tagging program and to the broader use of RF carpets in dense noble gases. The manuscript's main strengths are that the transport observation is based on direct current measurements, that the phase-direction scan in Fig. 9 is a clean control showing reversal of transport with phase order, and that the RF-voltage dependence in Fig. 8 is in the expected direction for a traveling-wave mechanism. The paper also makes a useful, explicitly qualitative comparison with SIMION simulations. However, the quantitative efficiency claim currently rests on normalization and background-subtraction assumptions that are not experimentally validated, and no uncertainties are reported.

major comments (3)
  1. [Section 3; Eq. (6); Figs. 8-9] The efficiency definition in Eq. (6) assumes that the blocker electrode prevents all direct ion collection at the ring and that the VRF=0 subtraction removes every non-RF contribution. Neither assumption is demonstrated: no blocker current, blocker-voltage scan, or blocker-bias dependence is reported, and the COMSOL plot in Fig. 6 shows only field lines that terminate on the carpet, so it cannot establish shadowing of the ring under all operating conditions. The phase-direction scan in Fig. 9 is the best evidence for the traveling-wave mechanism, but it is reported at one RF amplitude (Vpp = 250 V) and at the 400 mbar benchmark, leaving open the possibility of RF-dependent leakage elsewhere in the Fig. 8 parameter space. A blocker-bias or blocker-current measurement across pressures would directly address this concern.
  2. [Section 3; Eq. (6)] The normalization IC is measured with all carpet electrodes shorted together and no RF applied, whereas the numerator is measured with RF on. If the RF pseudo-potential changes the fraction of ions that would otherwise be collected by the carpet (for example, by levitating some ions away entirely), then IC is not the number of ions available for transport in the RF-on condition, and the quoted efficiencies are not a true fraction of the transported population. The paper should compare IC measured with and without RF and with phase order reversed, or justify why the shorted-electrode carpet current is the correct denominator.
  3. [Section 4.1; Figs. 8-9] No uncertainties are reported for any current measurement or efficiency point, and Eq. (6) involves four measured currents with no stated precision or repeatability. The push-plate normalization IP(VRF=Vpp)/IP(VRF=0) is introduced as a correction for source drift, but its own fluctuation enters the efficiency without an uncertainty estimate. Without error bars, the claimed pressure and voltage trends (e.g., the 600 mbar efficiency exceeding the 400 mbar efficiency at fixed push field in Fig. 8, right) cannot be distinguished from statistical variation.
minor comments (4)
  1. [Section 2.4; Fig. 7] The blocker electrode is described as essential for the measurement, but its bias voltage is not listed in the schematic of Fig. 7 or in the text; please state its operating potential.
  2. [Section 4.1] The sentence explaining the 600 mbar result ('the relatively lower push field for 600 mbar doesn't allow ions to come close enough to the carpet surface to interact with the RF pseudo-potential and as a result they're drifted by the DC field') is internally confusing; please clarify whether the lower push field helps or hinders transport and how it leads to higher efficiency.
  3. [Section 4.2; Fig. 10] The clustering-model analogy with Ref. [26] is a strong assumption, and the current paper should explicitly state the systematic uncertainty this introduces into the simulation comparison, especially since the model is transferred from Ba+/Xe to Cs+/Xe without direct experimental validation.
  4. [Conclusions] There is a typo in the conclusions: 'workrepresents' should read 'work represents'.

Circularity Check

0 steps flagged · score 1.0 of 10

No significant circularity: the central transport efficiency is a direct current measurement, and the simulation comparison is not fitted to the data.

full rationale

The paper's main claim is an experimental demonstration. The transport efficiency in Eq. (6) is defined directly as the RF-on minus RF-off collection-ring current normalized by the shorted-carpet current; it is a measured ratio, not a derived quantity, and no parameter is fitted and then renamed a prediction. The SIMION comparison is a forward calculation with fields fixed by the apparatus and three independent cross-section choices (geometric, mobility-based, and clustering-scaled). The clustering-scaled case imports a fractional mobility scaling from Ref. [26], whose authors overlap with the present collaboration, but it is not tuned to the present data, and the paper explicitly reports only qualitative agreement (Sec. 4.2, 'do not provide a quantitatively accurate match'), so the experimental claim does not depend on that cited model. Similarly, the Cs+ to Ba2+ extrapolation is presented as a simulation-based expectation ('Our simulations suggest... conservative proxy'), not as a consequence of the measured transport curve. The phase-reversal behavior in Fig. 9 provides an independent directional check of the traveling-wave mechanism, and the measurement systematics regarding the blocker and background subtraction are experimental uncertainties, not circular reasoning. Overall, the derivation chain is self-contained: the headline result is a measured current ratio, and the theoretical comparisons are auxiliary and explicitly non-quantitative.

Assumptions & free parameters 1 free parameters · 6 assumptions · 0 invented entities

The central experimental claim rests on a standard physics theory (Dehmelt pseudo-potential), a set of domain assumptions about ion identities and collision models, and several untested extrapolations (Cs+ to Ba2+, outward to inward sweeping). No new physical entities are introduced. The only operating parameter that materially shapes the reported efficiency values is the empirically chosen push field strength.

free parameters (1)
  • Push field strength Epush = 9 V/cm at 400 mbar; pressure-scaled at other pressures
    Chosen empirically through iterative adjustments to maximize transport at 400 mbar; transport efficiency depends on this value.
assumptions (6)
  • standard math Dehmelt pseudo-potential theory (Eqs. 1, 3, 4) from Refs [10,31,32]
    Used to motivate the carpet design and interpret the results; adopted from prior literature and not re-derived here.
  • domain assumption Hard-sphere collision model in SIMION
    Simulations treat ion-neutral collisions as hard-sphere events, neglecting long-range interactions; stated in Section 4.2.
  • domain assumption No charge transfer between Cs+ and Xe
    Based on the lower ionization potential of Cs+, asserted in Section 2.3 to ensure the transported species is Cs+.
  • ad hoc to paper Cs+/Xe clustering dynamics follow Ba+/Xe clustering from Ref [26]
    The pressure-dependent mobility scaling and cluster fractions are borrowed from a prior paper with overlapping authors; this is the main assumption in the simulation comparison (Section 4.2, Fig. 10).
  • ad hoc to paper Cs+ transport results are a conservative proxy for Ba2+
    Stated in Section 2.3 based on the authors' simulations, but not experimentally verified in this work.
  • ad hoc to paper Outward-sweeping carpet results map to inward-sweeping future devices
    Stated in Section 2.1; the current carpet is run outward because the central electrode is not instrumented, and the authors assume the physics transfers.

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Pith. "Pith review of Ion Transport on Phased Radiofrequency Carpets in Xenon Gas." pith.science (2026). https://pith.science/paper/TVVJUFL7

@misc{pith2026250118690,
  author       = {Pith},
  title        = {Pith review of: Ion Transport on Phased Radiofrequency Carpets in Xenon Gas},
  year         = {2026},
  howpublished = {\url{https://pith.science/paper/TVVJUFL7}},
  note         = {Machine review of arXiv:2501.18690}
}
abstract

We present the design and performance of a four-phased radiofrequency (RF) carpet system for ion transport in high-pressure xenon gas. The RF carpet, designed with a 160 $\mu$m pitch, is applied to the lateral collection of ions in xenon at pressures up to 600 mbar. We demonstrate transport efficiency of caesium ions across varying pressures, and compare with microscopic simulations made in the SIMION package. The novel use of an N-phased RF carpet at high pressure can achieve ion levitation and controlled lateral motion in a denser environment than is typical for RF ion transport in gases. This feature makes such carpets strong candidates for ion transport to single ion sensors envisaged for future neutrinoless double-beta decay experiments in xenon gas.

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Reference graph

Works this paper leans on

53 extracted references · 50 canonical work pages · cited by 1 Pith paper

  1. [1]

    Shaffer, K

    S.A. Shaffer, K. Tang, G.A. Anderson, D.C. Prior, H.R. Udseth and R.D. Smith, A novel ion funnel for focusing ions at elevated pressure using electrospray ionization mass spectrometry , Rapid Communications in Mass Spectrometry 11 (1997) 1813

  2. [2]

    Appelhans, David A

    Anthony D. Appelhans, David A. Dahl, The ion funnel: Theory, implementations, and applications, Mass Spectrometry Reviews 29 (2010) 294

  3. [3]

    Schury, M

    P. Schury, M. Wada, Y. Ito, F. Arai, D. Kaji, S. Kimura et al., Status of the low-energy super-heavy element facility at riken , Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 376 (2016) 425

  4. [4]

    Savard, S

    G. Savard, S. Baker, C. Davids, A. Levand, E. Moore, R. Pardo et al., Radioactive beams from gas catchers: The caribu facility , Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 266 (2008) 4086

  5. [5]

    Brown, Quantum motion in a paul trap , Phys

    L.S. Brown, Quantum motion in a paul trap , Phys. Rev. Lett. 66 (1991) 527

  6. [6]

    Horvath, R

    G. Horvath, R. Thompson and P. Knight, Fundamental physics with trapped ions , Contemporary Physics 38 (1997) 25

  7. [7]

    Mehta, C

    K. Mehta, C. Bruzewicz, R. McConnell, R. Ram, J. Sage and J. Chiaverini, Integrated optical addressing of an ion qubit , Nature Nanotechnology 11 (2016) 1066

  8. [8]

    Y. Wang, M. Um, J. Zhang, S. An, M. Lyu, J.-N. Zhang et al., Single-qubit quantum memory exceeding ten-minute coherence time, Nature Photonics 11 (2017) 646

Show all 53 references
  1. [9]

    Brunner, D

    T. Brunner, D. Fudenberg, V. Varentsov, A. Sabourov, G. Gratta, J. Dilling et al., An rf-only ion-funnel for extraction from high-pressure gases , International Journal of Mass Spectrometry 379 (2015) 110

  2. [10]

    Jones, A

    B. Jones, A. Raymond, K. Woodruff, N. Byrnes, A. Denisenko, F. Foss et al., The dynamics of ions on phased radio-frequency carpets in high pressure gases and application for barium tagging in xenon gas time projection chambers , Nuclear Instruments and Methods in Physics Resea...

  3. [11]

    Buchmuller, R

    W. Buchmuller, R. Peccei and T. Yanagida, Leptogenesis as the origin of matter , Annual Review of Nuclear and Particle Science 55 (2005) 311

  4. [12]

    Dolinski, A.W.P

    M.J. Dolinski, A.W.P. Poon and W. Rodejohann, Neutrinoless Double-Beta Decay: Status and Prospects, Ann. Rev. Nucl. Part. Sci. 69 (2019) 219 [ 1902.04097]

  5. [13]

    Agostini, G

    M. Agostini, G. Benato and J.A. Detwiler, Discovery probability of next-generation neutrinoless double- β decay experiments, Phys. Rev. D 96 (2017) 053001

  6. [14]

    Moe, New approach to the detection of neutrinoless double beta decay , Physical Review C44 (1991) 931

    M.K. Moe, New approach to the detection of neutrinoless double beta decay , Physical Review C44 (1991) 931

  7. [15]

    Adams et al., Sensitivity of a tonne-scale next detector for neutrinoless double beta decay searches, JHEP 2021 (2021) 164

    C. Adams et al., Sensitivity of a tonne-scale next detector for neutrinoless double beta decay searches, JHEP 2021 (2021) 164

  8. [16]

    nEXO collaboration, Imaging individual barium atoms in solid xenon for barium tagging in nEXO, Nature 569 (2019) 203 [ 1806.10694]

  9. [17]

    B. Mong, S. Cook, T. Walton, C. Chambers, A. Craycraft, C. Benitez-Medina et al., Spectroscopy of Ba and Ba + deposits in solid xenon for barium tagging in nEXO , Physical Review A91 (2015) 022505 [ 1410.2624]. – 20 –

  10. [18]

    Rollin, Barium Ion Extraction and Identification from Laser Induced Fluorescence in Gas for the Enriched Xenon Observatory , Ph.D

    E. Rollin, Barium Ion Extraction and Identification from Laser Induced Fluorescence in Gas for the Enriched Xenon Observatory , Ph.D. thesis, Carleton U., 2011

  11. [19]

    Sinclair, E

    D. Sinclair, E. Rollin, J. Smith, A. Mommers, N. Ackerman, B. Aharmim et al., Prospects for Barium Tagging in Gaseous Xenon , Journal of Physics Conference Series 309 (2011) 012005

  12. [20]

    Flatt, M

    B. Flatt, M. Green, J. Wodin, R. DeVoe, P. Fierlinger, G. Gratta et al., A linear RFQ ion trap for the Enriched Xenon Observatory , Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment A578 (2007) 399 [ ...

  13. [21]

    NEXT collaboration, Demonstration of single-barium-ion sensitivity for neutrinoless double-beta decay using single-molecule fluorescence imaging , Phys. Rev. Lett. 120 (2018) 132504

  14. [22]

    Rivilla, B

    I. Rivilla, B. Aparicio, J. Bueno, D. Casanova, C. Tonnell´ e, Z. Freixa et al., Fluorescent bicolour sensor for low-background neutrinoless double β decay experiments, Nature 583 (2020) 48

  15. [23]

    Jones, A

    B. Jones, A. McDonald and D. Nygren, Single molecule fluorescence imaging as a technique for barium tagging in neutrinoless double beta decay , Journal of Instrumentation 11 (2016) P12011

  16. [24]

    Thapa, N.K

    P. Thapa, N.K. Byrnes, A.A. Denisenko, J.X. Mao, A.D. McDonald, C.A. Newhouse et al., Selective single-barium ion detection with dry diazacrown ether naphthalimide turn-on chemosensors, ACS Sensors 6 (2021) 192

  17. [25]

    Thapa, I

    P. Thapa, I. Arnquist, N. Byrnes, A. Denisenko, F.W.F. Jr. and B.J.P. Jones, Barium chemosensors with dry-phase fluorescence for neutrinoless double beta decay , Scientific Reports 9 (2019) 15097

  18. [26]

    Bainglass, B.P

    E. Bainglass, B.P. Jones, F. Foss, M. Huda and D. Nygren, Mobility and Clustering of Barium Ions and Dications in High Pressure Xenon Gas , Phys. Rev. A 97 (2018) 062509 [1804.01169]

  19. [27]

    Herrero-G´ omez, J

    P. Herrero-G´ omez, J. Calupitan, M. Ilyn, A. Berdonces-Layunta, T. Wang, D. de Oteyza et al., Ba2+ ion trapping using organic submonolayer for ultra-low background neutrinoless double beta detector , Nature Communications 13 (2022) 7741

  20. [28]

    Nygren, Detecting the barium daughter in 136Xe 0- νββ decay using single-molecule fluorescence imaging techniques, Journal of Physics: Conference Series 650 (2015) 012002

    D.R. Nygren, Detecting the barium daughter in 136Xe 0- νββ decay using single-molecule fluorescence imaging techniques, Journal of Physics: Conference Series 650 (2015) 012002

  21. [29]

    D. Ray, R. Collister, H. Rasiwala, L. Backes, A.V. Balbuena, T. Brunner et al., Ion manipulation from liquid xe to vacuum: Ba-tagging for a nexo upgrade and future 0νββ experiments, arXiv preprint (2024) [ 2410.18138]

  22. [30]

    Byrnes, E

    N. Byrnes, E. Dey, F. Foss, B. Jones, D. Nygren et al., Fluorescence imaging of individual ions and molecules in pressurized noble gases for barium tagging in 136Xe, Nature Communications 15 (2024) 10595

  23. [31]

    Dehmelt, Radiofrequency spectroscopy of stored ions i: Storage , Advances in Atomic and Molecular Physics 3 (1968) 53

    H. Dehmelt, Radiofrequency spectroscopy of stored ions i: Storage , Advances in Atomic and Molecular Physics 3 (1968) 53

  24. [32]

    Schwarz, Rf ion carpets: The electric field, the effective potential, operational parameters and an analysis of stability , International Journal of Mass Spectrometry 299 (2011) 71

    S. Schwarz, Rf ion carpets: The electric field, the effective potential, operational parameters and an analysis of stability , International Journal of Mass Spectrometry 299 (2011) 71

  25. [33]

    Bollen, ”ion surfing” with radiofrequency carpets , International Journal of Mass Spectrometry 299 (2011) 131

    G. Bollen, ”ion surfing” with radiofrequency carpets , International Journal of Mass Spectrometry 299 (2011) 131. – 21 –

  26. [34]

    F. Arai, Y. Ito, M. Wada, P. Schury, T. Sonoda and H. Mita, Investigation of the ion surfing transport method with a circular rf carpet , International Journal of Mass Spectrometry 362 (2014) 56

  27. [35]

    Davis, R

    C. Davis, R. Bualuan, O. Bruce, D. Burdette, A. Cannon, T. Florenzo et al., Commissioning of the st. benedict rf carpet , Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment 1042 (2022) 167422

  28. [36]

    Gehring, M

    A.E. Gehring, M. Brodeur, G. Bollen, D.J. Morrissey, S. Schwarz, Research and development of ion surfing rf carpets for the cyclotron gas stopper at the nscl. , Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 376 (2016) 221

  29. [37]

    Querci, V

    L. Querci, V. Varentsov, D. G¨ unther and B. Hattendorf, An rf-only ion funnel interface for ion cooling in laser ablation time of flight mass spectrometry , Spectrochimica Acta Part B: Atomic Spectroscopy 146 (2018) 57

  30. [38]

    Ranjan, S

    M. Ranjan, S. Purushothaman, T. Dickel, H. Geissel, W. Plaß, D. Sch¨ afer et al., New stopping cell capabilities: Rf carpet performance at high gas density and cryogenic operation , Europhysics Letters (EPL) 96 (2011) 52001

  31. [39]

    K. Lund, G. Bollen, D. Lawton, D. Morrissey, J. Ottarson, R. Ringle et al., Online tests of the advanced cryogenic gas stopper at nscl , Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 463 (2020) 378

  32. [40]

    Ringle, G

    R. Ringle, G. Bollen, K. Lund, C. Nicoloff, S. Schwarz, C. Sumithrarachchi et al., Particle-in-cell techniques for the study of space charge effects in the advanced cryogenic gas stopper, Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Mat...

  33. [41]

    Savard, A

    G. Savard, A. Levand and B. Zabransky, The caribu gas catcher , Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 376 (2016) 246

  34. [42]

    Davis, O

    C. Davis, O. Bruce, D. Burdette, T. Florenzo, B. Liu, J. Long et al., Transport tests of the st. benedict first-stage extraction system , Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment 1031 (2022) 166509

  35. [43]

    https://nanorfe.com/nanovna-v2.html

  36. [44]

    https://www.analog.com/en/resources/design-tools-and-calculators/ ltspice-simulator.html

  37. [45]

    https://www.dxworld-e.com/product-page/ mrf300-ldmos-600w-hf-linear-amplifier-160-6-ldmos-included

  38. [46]

    Blewett and E.J

    J.P. Blewett and E.J. Jones, Filament sources of positive ions , Phys. Rev. 50 (1936) 464

  39. [47]

    Weber and L.F

    R.E. Weber and L.F. Cordes, Aluminosilicate alkali ion sources , Review of Scientific Instruments 37 (1966) 112

  40. [48]

    Technical bulletin 118: Aluminosilicate cathodes

    “Technical bulletin 118: Aluminosilicate cathodes.” https://www.cathode.com/pdf/tb-118.pdf

  41. [49]

    Dickinson, H

    E.J. Dickinson, H. Ekstr¨ om and E. Fontes,Comsol multiphysics ®: Finite element software for electrochemical analysis. a mini-review , Electrochemistry Communications 40 (2014) 71. – 22 –

  42. [50]

    Appelhans and D.A

    A.D. Appelhans and D.A. Dahl, Simion ion optics simulations at atmospheric pressure , International Journal of Mass Spectrometry 244 (2005) 1

  43. [51]

    Medina, MOBILITY AND FLUORESCENCE OF BARIUM IONS IN XENON GAS FOR THE EXO EXPERIMENT , Ph.D

    J.C.B. Medina, MOBILITY AND FLUORESCENCE OF BARIUM IONS IN XENON GAS FOR THE EXO EXPERIMENT , Ph.D. thesis, Colorado State University, 2014

  44. [52]

    Thackston, F.L

    M.G. Thackston, F.L. Eisele, W.M. Pope, H.W. Ellis and E.W. McDaniel, Further tests of the generalized einstein relation: Cs + ions in ar, kr, and xe , The Journal of Chemical Physics 68 (1978) 3950

  45. [53]

    Viehland, T

    L.A. Viehland, T. Skaist, C. Adhikari and W.F. Siems, Accurate zero-field mobilities of atomic ions in the rare gases for calibration of ion mobility spectrometers , International Journal for Ion Mobility Spectrometry 20 (2017) 1. – 23 –

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