Neutralization Dynamics of Slow Highly Charged Ions in 2D Materials
暂无分享,去创建一个
René Heller | Friedrich Aumayr | Richard A. Wilhelm | Elisabeth Gruber | Janine Schwestka | Stefan Fascko | R. Heller | F. Aumayr | E. Gruber | J. Schwestka | R. Wilhelm | S. Fascko
[1] Briand,et al. Decay of hollow atoms above and below a surface. , 1996, Physical review. A, Atomic, molecular, and optical physics.
[2] H. Vieker,et al. Fabrication of nanopores in 1 nm thick carbon nanomembranes with slow highly charged ions , 2013 .
[3] A. Krasheninnikov,et al. Interatomic Coulombic Decay: The Mechanism for Rapid Deexcitation of Hollow Atoms. , 2017, Physical review letters.
[4] F. Aumayr,et al. Multicharged Ion Impact on Clean Au(111): Suppression of Kinetic Electron Emission in Glancing Angle Scattering , 1998 .
[5] V. Sokolovsky,et al. Ultra-thin MoS2 irradiated with highly charged ions , 2013 .
[6] P. Quinet,et al. Calculation of Auger rates for complex hollow-atom configurations , 2001 .
[7] M. Mirakhmedov. Auger and X-ray spectra formed at highly charged ion neutralization near the metal surface , 1995 .
[8] Lanxi Wang,et al. Potential effect on the interaction of highly charged ion with graphene , 2017 .
[9] R. Brédy,et al. Very fast hollow-atom decay processes in Xe30+-C60 collisions. , 2002, Physical review letters.
[10] Hans D. Betz,et al. Charge states and charge-changing cross sections of fast heavy ions , 1972 .
[11] C. Sosolik,et al. Classical over-the-barrier model for neutralization of highly charged ions above thin dielectric films , 2013 .
[12] C. Cocke,et al. Energy loss of highly charged argon ions at grazing incidence on a graphite surface , 1997 .
[13] R. Heller,et al. Defect mediated desorption of the KBr(001) surface induced by single highly charged ion impact. , 2008, Physical review letters.
[14] A. Niehaus. A classical model for multiple-electron capture in slow collisions of highly charged ions with atoms , 1986 .
[15] S. Jian,et al. Observation of HCI-induced nanostructures with a scanning probe microscope , 2007 .
[16] H. Bahlouli,et al. On the formation of surface nanostructures induced by slow highly charged ions , 2017 .
[17] Jie Liu,et al. Comparative study of irradiation effects in graphite and graphene induced by swift heavy ions and highly charged ions , 2016 .
[18] A. Turchanin,et al. Dry-cleaning of graphene , 2014 .
[19] M. Schleberger,et al. Damage in graphene due to electronic excitation induced by highly charged ions , 2013, 1310.6233.
[20] F. Aumayr,et al. Potential sputtering: desorption from insulator surfaces by impact of slow multicharged ions , 1999 .
[21] One Nanometer Thin Carbon Nanosheets with Tunable Conductivity and Stiffness , 2009, 1105.5791.
[22] I. Gebeshuber,et al. Creation of nanohillocks on CaF2 surfaces by single slow highly charged ions. , 2008, Physical Review Letters.
[23] A. Turchanin,et al. Nanostructuring graphene by dense electronic excitation , 2015, Nanotechnology.
[24] C. Sosolik,et al. Charge state dependent energy deposition by ion impact. , 2011, Physical review letters.
[25] T. Niedermayr,et al. CHARGE EQUILIBRATION TIME OF SLOW, HIGHLY CHARGED IONS IN SOLIDS , 1999 .
[26] J. Schulz,et al. Femtosecond interatomic Coulombic decay in free neon clusters: large lifetime differences between surface and bulk. , 2004, Physical review letters.
[27] A. Arnau,et al. Auger and radiative filling rates of highly charged ions below metal surfaces , 1998 .
[28] Page,et al. Multiple-cascade model for the filling of hollow Ne atoms moving below an Al surface. , 1995, Physical review. A, Atomic, molecular, and optical physics.
[29] A. Lorke,et al. Irradiation of graphene field effect transistors with highly charged ions , 2016 .
[30] Lerner,et al. Above-surface neutralization of highly charged ions: The classical over-the-barrier model. , 1991, Physical review. A, Atomic, molecular, and optical physics.
[31] Extended classical over-barrier model for collisions of highly charged ions with conducting and insulating surfaces , 1997, physics/9711029.
[32] U. Thumm,et al. Neutralization of hyperthermal multiply charged ions at surfaces: Comparison between the extended dynamical overbarrier model and experiment , 1999 .
[33] S. Kirkpatrick,et al. Nanometer size hole fabrication in 2d ultrathin films with cluster ion beams , 2017 .
[34] L. Cederbaum,et al. Interatomic electronic decay in endohedral fullerenes. , 2006, Physical review letters.
[35] Fry,et al. Neutralization and equilibration of highly charged argon ions at grazing incidence on a graphite surface. , 1996, Physical review. A, Atomic, molecular, and optical physics.
[36] J. Biersack,et al. The Stopping and Ranges of Ions in Solids , 1993 .
[37] R. Heller,et al. A setup for transmission measurements of low energy multiply charged ions through free-standing few atomic layer films , 2016 .
[38] Herrmann,et al. Charge-state equilibration length of a highly charged ion inside a carbon solid. , 1994, Physical Review A. Atomic, Molecular, and Optical Physics.
[39] F. Meyer,et al. Time Scales for Charge Equilibration of O q + ( 3 ≤ q ≤ 8 ) Ions during Surface-Channeling Interactions with Au(110) , 1995 .
[40] F. Aumayr,et al. Charge-state-dependent energy loss of slow ions. I. Experimental results on the transmission of highly charged ions , 2016 .
[41] W. Möller,et al. Charge-state-dependent energy loss of slow ions. II. Statistical atom model , 2016 .
[42] C. Trautmann,et al. Single ion induced surface nanostructures: a comparison between slow highly charged and swift heavy ions , 2011, Journal of physics. Condensed matter : an Institute of Physics journal.
[43] L. Cederbaum,et al. Ab initio calculation of interatomic decay rates by a combination of the Fano ansatz, Green's-function methods, and the Stieltjes imaging technique. , 2005, The Journal of chemical physics.
[44] R. Heller,et al. Charge exchange and energy loss of slow highly charged ions in 1 nm thick carbon nanomembranes. , 2013, Physical review letters.
[45] D. Käfer,et al. Molecular mechanisms of electron-induced cross-linking in aromatic SAMs. , 2009, Langmuir : the ACS journal of surfaces and colloids.
[46] A. Cassimi,et al. Energy deposition by heavy ions: Additivity of kinetic and potential energy contributions in hillock formation on CaF2 , 2014, Scientific Reports.
[47] H. Winter. Collisions of atoms and ions with surfaces under grazing incidence , 2002 .
[48] Christian Punckt,et al. Functionalized graphene as a catalytic counter electrode in dye-sensitized solar cells. , 2010, ACS nano.
[49] Winter,et al. Potential sputtering of lithium fluoride by slow multicharged ions. , 1995, Physical review letters.
[50] A. Arnau,et al. Interaction of slow multicharged ions with solid surfaces , 1997 .
[51] R. Hübner,et al. Threshold and Efficiency for Perforation of 1nm Thick Carbon Nano-membranes with Slow Highly Charged Ions , 2015 .
[52] R. Heller,et al. A versatile ion beam spectrometer for studies of ion interaction with 2D materials. , 2018, The Review of scientific instruments.
[53] F. Aumayr,et al. Potential sputtering , 2003, Philosophical Transactions of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences.
[54] Andre K. Geim,et al. The rise of graphene. , 2007, Nature materials.
[55] Yong-tao Zhao,et al. Raman spectroscopy of graphene irradiated with highly charged ions , 2016 .
[56] N. Aluru,et al. DNA base detection using a single-layer MoS2. , 2014, ACS nano.
[57] T. Jahnke. Interatomic and intermolecular Coulombic decay: the coming of age story , 2015 .
[58] R. Heller,et al. Tuning the Fabrication of Nanostructures by Low-Energy Highly Charged Ions. , 2016, Physical review letters.
[59] Lorenz S. Cederbaum,et al. Giant Intermolecular Decay and Fragmentation of Clusters , 1997 .
[60] A. Borisov,et al. Ultrafast electronic response of graphene to a strong and localized electric field , 2016, Nature Communications.
[61] Z. Insepov,et al. Computer simulation of surface modification with ion beams , 2005 .
[62] Y. Ikuhara,et al. Self-Limiting Chemical Vapor Deposition Growth of Monolayer Graphene from Ethanol , 2013 .
[63] Q. Ramasse,et al. Electronic Structure Modification of Ion Implanted Graphene: The Spectroscopic Signatures of p- and n-Type Doping. , 2015, ACS Nano.
[64] R. Heller,et al. Slow highly charged ion induced nanopit formation on the KCl(001) surface , 2016 .
[65] M. Briere,et al. Electronic Sputtering of Thin Conductors by Neutralization of Slow Highly Charged Ions , 1997 .