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Alexander, John D.
Publications (10 of 24) Show all publications
Navarro-Navarrete, J. E., Martini, P., Rosén, S., Simonsson, A., Reinhed, P., Björkhage, M., . . . Zettergren, H. (2025). Electron Affinities of C60 and C70 and Cooling of Their Anions. Physical Review Letters, 135(21), Article ID 213001.
Open this publication in new window or tab >>Electron Affinities of C60 and C70 and Cooling of Their Anions
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2025 (English)In: Physical Review Letters, ISSN 0031-9007, E-ISSN 1079-7114, Vol. 135, no 21, article id 213001Article in journal (Refereed) Published
Abstract [en]

We combine cryogenic storage of fullerene anions up to minutes with laser photo-detachment spectroscopy and measure the electron affinities to be 2.684(3) eV for C60 and 2.7665(3) eV for C70, which settle long-standing issues concerning these values. We find that C−70 cools more efficiently than C−60 and that this is due to differences in photon emission from electronically excited states populated by inverse internal conversion (recurrent fluorescence). We also find that intramolecular vibrational redistribution is no longer effective at low internal energies of C−60 or C−70. Radiative cooling becomes extremely slow below intramolecular vibrational redistribution decoupling energies of 0.32(2) and 0.13(3) eV for C−60 and C−70, respectively.

National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:su:diva-250306 (URN)10.1103/j2sv-7v9l (DOI)001629375300002 ()41349073 (PubMedID)2-s2.0-105022305806 (Scopus ID)
Available from: 2026-01-07 Created: 2026-01-07 Last updated: 2026-01-07Bibliographically approved
Kristiansson, M. K., Chartkunchand, K., Eklund, G., Hole, O. M., Anderson, E. K., de Ruette, N., . . . Hanstorp, D. (2022). High-precision electron affinity of oxygen. Nature Communications, 13(1), Article ID 5906.
Open this publication in new window or tab >>High-precision electron affinity of oxygen
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2022 (English)In: Nature Communications, E-ISSN 2041-1723, Vol. 13, no 1, article id 5906Article in journal (Refereed) Published
Abstract [en]

Negative ions are important in many areas of science and technology, e.g., in interstellar chemistry, for accelerator-based radionuclide dating, and in anti-matter research. They are unique quantum systems where electron-correlation effects govern their properties. Atomic anions are loosely bound systems, which with very few exceptions lack optically allowed transitions. This limits prospects for high-resolution spectroscopy, and related negative-ion detection methods. Here, we present a method to measure negative ion binding energies with an order of magnitude higher precision than what has been possible before. By laser-manipulation of quantum-state populations, we are able to strongly reduce the background from photodetachment of excited states using a cryogenic electrostatic ion-beam storage ring where keV ion beams can circulate for up to hours. The method is applicable to negative ions in general and here we report an electron affinity of 1.461 112 972(87) eV for 16O.

National Category
Atom and Molecular Physics and Optics
Identifiers
urn:nbn:se:su:diva-211102 (URN)10.1038/s41467-022-33438-y (DOI)000865117600004 ()36207329 (PubMedID)2-s2.0-85139385264 (Scopus ID)
Available from: 2022-11-09 Created: 2022-11-09 Last updated: 2025-01-22Bibliographically approved
Goodwin, C. M., Alexander, J. D., Weston, M., Degerman, D., Shipilin, M., Loemker, P. & Amann, P. (2021). A Novel Method to Maintain the Sample Position and Pressure in Differentially Pumped Systems Below the Resolution Limit of Optical Microscopy Techniques. Applied Spectroscopy, 75(2), 137-144
Open this publication in new window or tab >>A Novel Method to Maintain the Sample Position and Pressure in Differentially Pumped Systems Below the Resolution Limit of Optical Microscopy Techniques
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2021 (English)In: Applied Spectroscopy, ISSN 0003-7028, E-ISSN 1943-3530, Vol. 75, no 2, p. 137-144Article in journal (Refereed) Published
Abstract [en]

We present a new method to maintain constant gas pressure over a sample during in situ measurements. The example shown here is a differentially pumped high-pressure X-ray photoelectron spectroscopy system, but this technique could be applied to many in situ instruments. By using the pressure of the differential stage as a feedback source to change the sample position, a new level of consistency has been achieved. Depending on the absolute value of the sample-to-aperture distance, this technique allows one to maintain the distance within several hundred nanometers, which is below the limit of typical optical microscopy systems. We show that this method is well suited to compensate for thermal drift. Thus, X-ray photoelectron spectroscopy data can be acquired continuously while the sample is heated and maintaining constant pressure over the sample. By implementing a precise manipulator feedback system, pressure variations of less than 5% were reached while the temperature was varied by 400 ℃. The system is also shown to be highly stable under significant changes in gas flow. After changing the flow by a factor of two, the pressure returned to the set value within 60 s.

Keywords
Ambient pressure XPS, differentially pumped systems, constant distance, feedback loop, distance control, pressure control, proportional&#8211, integral&#8211, derivative loop, PID loop, in situ
National Category
Physical Sciences
Identifiers
urn:nbn:se:su:diva-193280 (URN)10.1177/0003702820942798 (DOI)000614542700002 ()32597682 (PubMedID)
Available from: 2021-05-21 Created: 2021-05-21 Last updated: 2022-02-25Bibliographically approved
Amann, P., Degerman, D., Lee, M.-T., Alexander, J. D., Shipilin, M., Wang, H.-Y., . . . Nilsson, A. (2019). A high-pressure x-ray photoelectron spectroscopy instrument for studies of industrially relevant catalytic reactions at pressures of several bars. Review of Scientific Instruments, 90(10), Article ID 103102.
Open this publication in new window or tab >>A high-pressure x-ray photoelectron spectroscopy instrument for studies of industrially relevant catalytic reactions at pressures of several bars
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2019 (English)In: Review of Scientific Instruments, ISSN 0034-6748, E-ISSN 1089-7623, Vol. 90, no 10, article id 103102Article in journal (Refereed) Published
Abstract [en]

We present a new high-pressure x-ray photoelectron spectroscopy system dedicated to probing catalytic reactions under realistic conditions at pressures of multiple bars. The instrument builds around the novel concept of a virtual cell in which a gas flow onto the sample surface creates a localized high-pressure pillow. This allows the instrument to be operated with a low pressure of a few millibar in the main chamber, while simultaneously a local pressure exceeding 1 bar can be supplied at the sample surface. Synchrotron based hard x-ray excitation is used to increase the electron mean free path in the gas region between sample and analyzer while grazing incidence <5 degrees close to total external refection conditions enhances surface sensitivity. The aperture separating the high-pressure region from the differential pumping of the electron spectrometer consists of multiple, evenly spaced, micrometer sized holes matching the footprint of the x-ray beam on the sample. The resulting signal is highly dependent on the sample-to-aperture distance because photoemitted electrons are subject to strong scattering in the gas phase. Therefore, high precision control of the sample-to-aperture distance is crucial. A fully integrated manipulator allows for sample movement with step sizes of 10 nm between 0 and -5 mm with very low vibrational amplitude and also for sample heating up to 500 degrees C under reaction conditions. We demonstrate the performance of this novel instrument with bulk 2p spectra of a copper single crystal at He pressures of up to 2.5 bars and C1s spectra measured in gas mixtures of CO + H-2 at pressures of up to 790 mbar. The capability to detect emitted photoelectrons at several bars opens the prospect for studies of catalytic reactions under industrially relevant operando conditions.

National Category
Physical Sciences Chemical Sciences
Identifiers
urn:nbn:se:su:diva-178584 (URN)10.1063/1.5109321 (DOI)000504078300008 ()2-s2.0-85073264844 (Scopus ID)
Available from: 2020-02-05 Created: 2020-02-05 Last updated: 2023-10-30Bibliographically approved
de Ruette, N., Wolf, M., Giacomozzi, L., Alexander, J. D., Gatchell, M., Stockett, M. H., . . . Cederquist, H. (2018). DESIREE electrospray ion source test bench and setup for collision induced dissociation experiments. Review of Scientific Instruments, 89(7), Article ID 075102.
Open this publication in new window or tab >>DESIREE electrospray ion source test bench and setup for collision induced dissociation experiments
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2018 (English)In: Review of Scientific Instruments, ISSN 0034-6748, E-ISSN 1089-7623, Vol. 89, no 7, article id 075102Article in journal (Refereed) Published
Abstract [en]

In this paper, we give a detailed description of an electrospray ion source test bench and a single-pass setup for ion fragmentation studies at the Double ElectroStatic Ion Ring ExpEriment infrastructure at Stockholm University. This arrangement allows for collision-induced dissociation experiments at the center-of-mass energies between 10 eV and 1 keV. Charged fragments are analyzed with respect to their kinetic energies (masses) by means of an electrostatic energy analyzer with a wide angular acceptance and adjustable energy resolution.

National Category
Subatomic Physics Atom and Molecular Physics and Optics
Research subject
Physics
Identifiers
urn:nbn:se:su:diva-156241 (URN)10.1063/1.5030528 (DOI)000440590200049 ()30068131 (PubMedID)2-s2.0-85049646482 (Scopus ID)
Funder
Swedish Research Council, 2017-00621Swedish Research Council, 2014-4501Swedish Research Council, 2015-04990Swedish Research Council, 2016-03675Swedish Research Council, 2016-04181Swedish Research Council, 2016-06625
Available from: 2018-05-14 Created: 2018-05-14 Last updated: 2025-02-14Bibliographically approved
Kulyk, K., Palianytsia, B., Alexander, J. D., Azizova, L., Borysenko, M., Kartel, M., . . . Kulik, T. (2017). Kinetics of Valeric Acid Ketonization and Ketenization in Catalytic Pyrolysis on Nanosized SiO2, gamma-Al2O3, CeO2/SiO2, Al2O3/SiO2 and TiO2/SiO2. ChemPhysChem, 18(14), 1943-1955
Open this publication in new window or tab >>Kinetics of Valeric Acid Ketonization and Ketenization in Catalytic Pyrolysis on Nanosized SiO2, gamma-Al2O3, CeO2/SiO2, Al2O3/SiO2 and TiO2/SiO2
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2017 (English)In: ChemPhysChem, ISSN 1439-4235, E-ISSN 1439-7641, Vol. 18, no 14, p. 1943-1955Article in journal (Refereed) Published
Abstract [en]

Valeric acid is an important renewable platform chemical that can be produced efficiently from lignocellulosic biomass. Upgrading of valeric acid by catalytic pyrolysis has the potential to produce value added biofuels and chemicals on an industrial scale. Understanding the different mechanisms involved in the thermal transformations of valeric acid on the surface of nanometer-sized oxides is important for the development of efficient heterogeneously catalyzed pyrolytic conversion techniques. In this work, the thermal decomposition of valeric acid on the surface of nanoscale SiO2, gamma-Al2O3, CeO2/SiO2, Al2O3/SiO2 and TiO2/SiO2 has been investigated by temperature-programmed desorption mass spectrometry (TPD MS). Fourier transform infrared spectroscopy (FTIR) has also been used to investigate the structure of valeric acid complexes on the oxide surfaces. Two main products of pyrolytic conversion were observed to be formed depending on the nano-catalyst used-dibutylketone and propylketene. Mechanisms of ketene and ketone formation from chemisorbed fragments of valeric acid are proposed and the kinetic parameters of the corresponding reactions were calculated. It was found that the activation energy of ketenization decreases in the order SiO2 > gamma-Al2O3 > TiO2/SiO2 > Al2O3/SiO2, and the activation energy of ketonization decreases in the order gamma-Al2O3 > CeO2/SiO2. Nanooxide CeO2/SiO2 was found to selectively catalyze the ketonization reaction.

Keywords
biomass, heterogeneous catalysis, high-temperature chemistry, kinetics, renewable resources
National Category
Physical Sciences
Identifiers
urn:nbn:se:su:diva-147167 (URN)10.1002/cphc.201601370 (DOI)000407947700015 ()28393449 (PubMedID)2-s2.0-85019161233 (Scopus ID)
Available from: 2017-09-22 Created: 2017-09-22 Last updated: 2022-10-20Bibliographically approved
Kulyk, K., Zettergren, H., Gatchell, M., Alexander, J. D., Borysenko, M., Palianytsia, B., . . . Kulik, T. (2016). Dimethylsilanone Generation from Pyrolysis of Polysiloxanes Filled with Nanosized Silica and Ceria/Silica. ChemPlusChem, 81(9), 1003-1013
Open this publication in new window or tab >>Dimethylsilanone Generation from Pyrolysis of Polysiloxanes Filled with Nanosized Silica and Ceria/Silica
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2016 (English)In: ChemPlusChem, E-ISSN 2192-6506, Vol. 81, no 9, p. 1003-1013Article in journal (Refereed) Published
Abstract [en]

Temperature-programmed desorption mass spectrometry (TPDMS) was used to study the pyrolysis of PDMS and its composites with nanosized silica and ceria/silica. The results suggest that the elusive organosilicon compound, dimethylsilanone, is generated from PDMS over a broad temperature range (in some cases starting at 70 degrees C). The presence of nano-oxides catalyzes this process. Ions characteristic of the fragmentation of dimethylsilanone under electron ionization are assigned with the aid of DFT structure calculations. Possible reaction mechanisms for dimethylsilanone generation are discussed in the context of the calculated kinetic parameters. Observed accompanying products of PDMS pyrolysis, such as tetramethylcyclodisiloxane and hexamethylcyclotrisiloxane, indicate that multiple channels are involved in the dimethylsilanone release.

Keywords
kinetics, mass spectrometry, polysiloxanes, pyrolysis, silica
National Category
Chemical Sciences
Identifiers
urn:nbn:se:su:diva-135968 (URN)10.1002/cplu.201600229 (DOI)000383686600015 ()2-s2.0-84976563062 (Scopus ID)
Available from: 2016-11-29 Created: 2016-11-28 Last updated: 2022-10-17Bibliographically approved
Kulyk, K., Borysenko, M., Kulik, T., Mikhalovska, L., Alexander, J. D. & Palianytsia, B. (2015). Chemisorption and thermally induced transformations of polydimethylsiloxane on the surface of nanoscale silica and ceria/silica. Polymer degradation and stability, 120, 203-211
Open this publication in new window or tab >>Chemisorption and thermally induced transformations of polydimethylsiloxane on the surface of nanoscale silica and ceria/silica
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2015 (English)In: Polymer degradation and stability, ISSN 0141-3910, E-ISSN 1873-2321, Vol. 120, p. 203-211Article in journal (Refereed) Published
Abstract [en]

Compositions of polydimethylsiloxane (PDMS) polymer with nanosized silica and ceria/silica were prepared. The influence of these nano-fillers on the thermal stability and degradation mechanism of silicone polymer was investigated using Thermogravimetric Analysis (TGA) and Temperature Programmed Desorption Mass Spectrometry (TPD MS). The results showed that thermal decomposition of pure and adsorbed PDMS differs significantly. The three main stages of the PDMS thermal transformations in the adsorbed state were determined to be: 1) chemisorption of PDMS chains involving the terminal trimethylsilyl groups of the polymer and silanol groups of the silica surface; 2) formation and desorption of cyclic oligomers; 3) high temperature radical degradation of the polymer accompanied by the formation of methane and ethylene. The kinetic parameters of the corresponding reactions were calculated from the TPD MS data. It was found that nanoparticles of cerium dioxide strongly influence the degradation pattern, lower the decomposition temperature and catalyze the formation of methane.

Keywords
Polydimethylsiloxane, Nanocomposite, Silica, Ceria, Pyrolysis, TPD MS
National Category
Materials Chemistry
Identifiers
urn:nbn:se:su:diva-122744 (URN)10.1016/j.polymdegradstab.2015.07.004 (DOI)000362926800023 ()2-s2.0-84937567103 (Scopus ID)
Available from: 2015-11-18 Created: 2015-11-10 Last updated: 2026-05-21Bibliographically approved
Thomas, R. D., Schmidt, H. T., Gatchell, M., Rosén, S., Reinhed, P., Löfgren, P., . . . Cederquist, H. (2015). DESIREE: Physics with cold stored ion beams. In: DR2013: Ninth international conference on dissociative recombination: theory, experiment, and applications. Paper presented at 9th International Conference on Dissociative Recombination: Theory, Experiment, and Applications, JUL 07-12, 2013, Paris, FRANCE. , 84, Article ID 01004.
Open this publication in new window or tab >>DESIREE: Physics with cold stored ion beams
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2015 (English)In: DR2013: Ninth international conference on dissociative recombination: theory, experiment, and applications, 2015, Vol. 84, article id 01004Conference paper, Published paper (Refereed)
Abstract [en]

Here we will briefly describe the commissioning of the Double ElectroStatic Ion Ring ExpEriment (DESIREE) facility at Stockholm University, Sweden. This device uses purely electrostatic focussing and deflection elements and allows ion beams of opposite charge to be confined under extreme high vacuum and cryogenic conditions in separate rings and then merged over a common straight section. This apparatus allows for studies of interactions between cations and anions at very low and well-defined centre-of-mass energies (down to a few meV) and at very low internal temperatures (down to a few K).

Series
EPJ Web of Conferences, ISSN 2100-014X
National Category
Physical Sciences Chemical Sciences
Identifiers
urn:nbn:se:su:diva-117061 (URN)10.1051/epjconf/20158401004 (DOI)000351835100004 ()
Conference
9th International Conference on Dissociative Recombination: Theory, Experiment, and Applications, JUL 07-12, 2013, Paris, FRANCE
Note

AuthorCount:35;

Available from: 2015-05-11 Created: 2015-05-06 Last updated: 2022-02-23Bibliographically approved
Kulyk, K., Rebrov, O., Stockett, M. H., Alexander, J. D., Zettergren, H., Schmidt, H. T., . . . Larsson, M. (2015). High-energy collisions of protonated enantiopure amino acids with a chiral target gas. International Journal of Mass Spectrometry, 388, 59-64
Open this publication in new window or tab >>High-energy collisions of protonated enantiopure amino acids with a chiral target gas
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2015 (English)In: International Journal of Mass Spectrometry, ISSN 1387-3806, E-ISSN 1873-2798, Vol. 388, p. 59-64Article in journal (Refereed) Published
Abstract [en]

We have studied the fragmentation of the singly protonated L- and D-forms of enantiomerically pure phenylalanine (Phe), tryptophan (Trp), and methionine (Met) in high-energy collisions with chiral and achiral gas targets. (S)-(+)-2-butanol, racemic (+/-)-2-butanol, and argon were used as target gases. At center-of-mass frame collision energy of I key, it was found that all of the ions exhibit common fragmentation pathways which are independent of target chirality. For all projectile ions, the elimination of NH3 and H2O + CO were found to be the main reaction channels. The observed fragmentation patterns were dominated by statistically driven processes. The energy deposited into the ions was found to be sufficient to yield multiple fragment ions, which arise from decomposition via various competitive reaction pathways.

Keywords
High-energy collisional activation, Tandem mass spectrometry, Protonated amino acids, Chiral collision gas, 2-Butanol
National Category
Physical Sciences
Research subject
Physics
Identifiers
urn:nbn:se:su:diva-122330 (URN)10.1016/j.ijms.2015.08.010 (DOI)000361778900008 ()2-s2.0-84940786631 (Scopus ID)
Available from: 2015-12-01 Created: 2015-10-29 Last updated: 2022-10-14Bibliographically approved
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