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000245831 0247_ $$2doi$$a10.1016/j.ijms.2020.116450
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000245831 0247_ $$2datacite_doi$$a10.15120/GSI-2022-00133
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000245831 0247_ $$2arXiv$$aarXiv:2007.14467
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000245831 037__ $$aGSI-2022-00133
000245831 041__ $$aEnglish
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000245831 088__ $$2arXiv$$aarXiv:2007.14467
000245831 1001_ $$aMiskun, Ivan$$b0
000245831 245__ $$aSeparation of atomic and molecular ions by ion mobility with an RF carpet
000245831 260__ $$a[S.l.]$$bElsevier Science$$c2021
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000245831 500__ $$aThis work was supported by the German Federal Ministry for Education and Research (BMBF) under contracts no. 05P16RGFN1 and 05P19RGFN1. PC is supported by ELI-NPPhase II (1/July 07, 2016, COP, ID 1334). "This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/)"
000245831 520__ $$aGas-filled stopping cells are used at accelerator laboratories for the thermalization of high-energy radioactive ion beams. Common challenges of many stopping cells are a high molecular background of extracted ions and limitations of extraction efficiency due to space-charge effects. At the FRS Ion Catcher at GSI, a new technique for removal of ionized molecules prior to their extraction out of the stopping cell has been developed. This technique utilizes the RF carpet for the separation of atomic ions from molecular contaminant ions through their difference in ion mobility. Results from the successful implementation and test during an experiment with a 600 MeV/u 124 Xe primary beam are presented. Suppression of molecular contaminants by three orders of magnitude has been demonstrated. Essentially background-free measurement conditions with less than
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000245831 650_7 $$2autogen$$aIon mobility
000245831 650_7 $$2autogen$$aGas cell
000245831 650_7 $$2autogen$$aBeam purification
000245831 650_7 $$2autogen$$aMolecular contamination
000245831 650_7 $$2autogen$$aLow-energy RIB
000245831 650_7 $$2autogen$$aSpace charge
000245831 693__ $$0EXP:(DE-Ds200)Experiment_without_proposal_number-20200803$$1EXP:(DE-Ds200)Facility_outside_beam_time_program-20200803$$5EXP:(DE-Ds200)Experiment_without_proposal_number-20200803$$aFacility_outside_beam_time_program$$eExperiment at GSI without experiment proposal number ( - ; Facility_outside_beam_time_program )$$x0
000245831 7001_ $$0P:(DE-Ds200)OR2034$$aDickel, Timo$$b1$$ugsi
000245831 7001_ $$0P:(DE-HGF)0$$aSan Andrés, Samuel Ayet$$b2
000245831 7001_ $$aBergmann, Julian$$b3
000245831 7001_ $$00000-0001-5368-3819$$aConstantin, Paul$$b4
000245831 7001_ $$aEbert, Jens$$b5
000245831 7001_ $$0P:(DE-Ds200)OR0346$$aGeissel, Hans$$b6$$ugsi
000245831 7001_ $$aGreiner, Florian$$b7
000245831 7001_ $$0P:(DE-Ds200)OR0414$$aHaettner, Emma$$b8$$ugsi
000245831 7001_ $$aHornung, Christine$$b9
000245831 7001_ $$aLippert, Wayne$$b10
000245831 7001_ $$00000-0002-3308-2239$$aMardor, Israel$$b11
000245831 7001_ $$aMoore, Iain$$b12
000245831 7001_ $$0P:(DE-Ds200)OR0954$$aPlaß, Wolfgang R.$$b13$$ugsi
000245831 7001_ $$0P:(DE-Ds200)OR3217$$aPurushothaman, Sivaji$$b14$$ugsi
000245831 7001_ $$aRink, Ann-Kathrin$$b15
000245831 7001_ $$aReiter, Moritz P.$$b16
000245831 7001_ $$0P:(DE-Ds200)OR1098$$aScheidenberger, Christoph$$b17$$ugsi
000245831 7001_ $$0P:(DE-Ds200)OR1370$$aWeick, Helmut$$b18$$ugsi
000245831 773__ $$0PERI:(DE-600)1484635-4$$a10.1016/j.ijms.2020.116450$$gVol. 459, p. 116450 -$$p116450$$tInternational journal of mass spectrometry$$v459$$x0020-7381$$y2021
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