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Data Tables14, 91 (1974)",{"EN":84},"TheL X-ray spectra of Au in collision with carbon and oxygen projectiles in the energy range of 0.25 to 0.75 MeV amu−1 have been measured. From the energy shifts and the yield-ratio shifts of theL\n1,L\nα,L\nη andL\nγ lines relative to those for the 3.5 MeV proton bombardment, the experimental values for the multiple ionisation probabilitiesp\n\nM4,5 andp\n\nN4 as a function of the projectile energy have been determined. 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Cryst. Growth17, 70 (1972)\nRobins, J.L., Mortlock, H.S., Howard, D.G.: Appl. Surf. Sci.:22\u002F23, 565 (1985)\nDumpich, G.: Thin Solid Films127, 323 (1985)\nPashley, D.W., Stowell, M.J., Jacobs, M.H., Law, T.J.: Philos. Mag.10, 127 (1964)\nWayman, C.M., Darby, T.P.: J. Cryst. Growth28, 53 (1975)\nGanz, E., Sattler, K., Clarke, J.: Phys. Rev. Lett.60, 1856 (1988)\nHumbert, A., Pierrisnard, K., Sangay, S., Chapon, C., Henry, C.R., Claeys, C.: Europhys. Lett.10, 533 (1989)\nChristopher, C.E.D., Loiacono, D.N., Sleator, T., Nakahara, S.: Surf. Sci.200, 45 (1988)",{"EN":366},"Gold particles deposited on graphite in vacuum have been studied by STM observation in air. Liquid-like coalescence between small gold-particles has been observed near room temperature. Preparation of small particles in vacuum is discussed. Small particles are formed in nucleation process if the degree of coalescence of particles is reduced. Over 400 Au particles of 5 nm in diameters with a narrow size-distribution with FWHM 2 nm and a high density of 3×1012\u002Fcm2 is prepared by evaporating gold in a vacuum of about 2×10−5 Torr and at the substrate (HOPG) temperature of 20°C.",{"EN":368},"STM observation of Au fine-particles on graphite",{"VOID":370},"10.1007\u002FBF01448323","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF01448323",[373,390,402,414],{"id":374,"sortIndex":116,"researcher":20,"roles":375,"affiliations":376,"properties":387},"bbbe4f55-6179-4872-8fd9-b1183aeaa743",[98],[377],{"id":20,"sortIndex":21,"affiliation":378,"properties":20},{"id":379,"createTime":380,"updateTime":381,"relativeEntities":382,"slug":383,"properties":384,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"ffd94cb8-552b-4d6d-ae5e-3690c2c4ad58","2024-02-07T19:10:25.317+00:00","2025-01-26T02:58:38.584+00:00",[],"Institute-for-Materials-Research-Tohoku-University-Sendai-Japan",{"title":385},{"VI":386},"Institute for Materials Research, Tohoku University, Sendai, Japan",{"title":388},{"VI":389},"Y. Nishina",{"id":391,"sortIndex":157,"researcher":20,"roles":392,"affiliations":393,"properties":399},"f9ed442f-8f6e-44fe-b234-2cf9809809c6",[98],[394],{"id":20,"sortIndex":21,"affiliation":395,"properties":20},{"id":379,"createTime":380,"updateTime":381,"relativeEntities":396,"slug":383,"properties":397,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":398},{"VI":386},{"title":400},{"VI":401},"A. Kasuya",{"id":403,"sortIndex":129,"researcher":20,"roles":404,"affiliations":405,"properties":411},"db9689dc-5e93-4b00-8195-c2a1f5b2d0bd",[98],[406],{"id":20,"sortIndex":21,"affiliation":407,"properties":20},{"id":379,"createTime":380,"updateTime":381,"relativeEntities":408,"slug":383,"properties":409,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":410},{"VI":386},{"title":412},{"VI":413},"S. Kubota",{"id":415,"sortIndex":21,"researcher":20,"roles":416,"affiliations":417,"properties":423},"2bc16374-2692-45fc-8e71-5acb6fd095ac",[98],[418],{"id":20,"sortIndex":21,"affiliation":419,"properties":20},{"id":379,"createTime":380,"updateTime":381,"relativeEntities":420,"slug":383,"properties":421,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":422},{"VI":386},{"title":424},{"VI":425},"R. Nishitani",{"url":371,"publisher":427,"properties":447},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":428,"slug":10,"properties":429,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":433,"manageAffiliations":434,"indexDatabases":435,"url":20,"thumbnailPath":20,"statistic":442,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":430,"eissn":431,"title":432},{"VOID":13},{"VOID":15},{"EN":17},[],[],[436],{"id":26,"indexDatabase":437,"url":39,"indexYears":40,"academicFieldIds":20,"indexDatabaseRanking":41},{"id":28,"createTime":29,"updateTime":30,"relativeEntities":438,"label":439,"description":440,"key":36,"publicationTags":441,"standard":20},[],{"EN":33,"VI":33},{"EN":33,"VI":35},[38],{"impactFactor":21,"impactFactorByYear":443,"i10Index":44,"i10IndexLast5Year":21,"totalPublication":45,"totalPublicationByYear":444,"totalCitation":59,"totalCitationByYear":445,"totalCitationPerPublication":64,"totalCitationPerPublicationByYear":446,"hindexLast5Year":69,"hindex":69},{},{"1986":47,"1987":48,"1988":49,"1989":50,"1990":51,"1991":52,"1992":53,"1993":54,"1994":48,"1995":55,"1996":56,"1997":57,"2014":58},{"1990":61,"1996":62,"1997":63},{"1990":66,"1996":67,"1997":68},{"volume":448,"pages":450},{"VOID":449},"19",{"VOID":451},"333-335","1991-03-01",1991,{"id":455,"createTime":456,"updateTime":457,"relativeEntities":458,"slug":459,"properties":460,"entityType":89,"verifyStatus":90,"verifyTime":457,"verifyNote":91,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":469,"fullTextUrl":20,"authors":470,"publicationType":168,"publisherRelationship":510,"citationCount":20,"citationInfo":20,"publishDate":536,"publishYear":537,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":197},"aff5a5f1-2991-4c4c-8b4f-34fd41a14241","2024-01-12T08:05:16.303+00:00","2024-12-18T23:56:12.159+00:00",[],"Study-of-potential-barriers-in-%CE%A3-states-of-Li-3P-3D-rare-gas-collision-molecules-by-means-of-laser-excitation-spectroscopy",{"references":461,"abstract":463,"title":465,"doi":467},{"VOID":462},"Pascale, J.: Phys. Rev. A28, 632 (1983)\nJungen, M., Staemmler, V.: J. Phys. B21, 463 (1988)\nHedges, R. E. M., Drummond, D. L., Gallagher, A.: Phys. Rev. A6, 1519 (1972)\nBalling, L.C., Wright, J.J., Havey, M.D.: Phys. Rev. A26, 1426 (1982)\nGrycuk, T., Findeisen, F.: J. Phys. B22, 1583 (1989)\nBehmenburg, W., Makonnen, A., Findeisen, M.: Z. Phys. D25, 315 (1992)\nBehmenburg, W., Ermers, A., Rebetrost, F.: Z. Phys. D18, 93 (1991)\nDüren, R., Hasselbrink, E., Moritz, G.: Z. Phys. A307, 1 (1982)\nPeach, G.: Comments At. Mol. Phys.11, 101 (1982)\nCzuchaj, E., Rebentrost, F., Stoll, H., Preuss, H.: Chem. Phys.136, 79 (1989)\nLee, C.J., Havey, M.D., Meyer, R.P.: Phys. Rev.43, 77 (1991)\nFermi, E.: Nuovo Cimento11, 157 (1934)\nOmont, A.: J. Phys.38, 1343 (1977)\nIvanov, G.K.: Opt. Spectrosc.40, 554 (1976)\nWilliams, J.F.: J. Phys. B12, 265 (1979)\nO'Malley, T.F., Crompton, R.W.: J. Phys. B13, 3451 (1980)\nPolak-Dingels, P., Rajan, M.S., Gislason, E.A.: J. Chem. Phys.77, 3983 (1982)\nSzudy, J., Baylis, W.E.: Journal of quantitative spectroscopy and radiative transitions15, 641 (1975)\nSando, K.M., Wormhoudt, J.C.: Phys. Rev. A7, 1889 (1973)\nBeuc, R., Horvatic, V.: J. Phys. B.: At. Mol. Opt. Phys.25, 1497 (1992)\nRose, M.E.: Elementary theory of angular momentum. New York: Wiley 1957\nWiese, W.L., Smith, M.W., Glennon, B.M.: Atomic transition probabilities, Vol. I. NSRDS-NBS 4, Washington 1966\nChaleard, C., Dubreuil, B., Cathernot, A.: Phys. Rev. A26, 1431 (1982)\nPress, W.H., Flannery, B.P., Teukolsky, S.A., Vetterling, W.T.: Numerical recipes. Cambridge: Cambridge University Press 1986\nPeach, G.: Private communication (1994)\nRebentrost, F.: Private communication\nCzuchaj, E., Rebentrost, F., Stoll, H., Preuss, H.: Chem. Phys.196, 37 (1995)\nMasnou-Seeuws, F.: J. Phys. B.: At. Mol. Opt. Phys.15, 883 (1982)\nStaemmler, V.: Private communication (1994)\nScheps, R., Ottinger, Ch., York, G., Gallagher, A.: J. Chem. Phys.63, 2581 (1975)\nLee, C.J., Havey, M.D.: Phys. Rev. A43, 6066 (1991)\nBuckman, S.J., Lohmann, B.: J. Phys. B19, 2547 (1986)\nBrühl, R., Zimmermann, D.: Chem. Phys. Lett.233, 455 (1995)\nGu, J., Hirsch, G., Buenker, R.J., Petsalakis, I.D., Theodorakopoulos, G., Huang, M.: Chem. Phys. Lett.230, 473 (1994)",{"EN":464},"Excitation spectra of the transitions 2P ΛA → 3D Λ and 2P Λ → 3PΛ in LiHe and LiNe collision molecules have been measured in the spectral range 15800–17600 cm−1 about the atomic Li2P → 3D line by means of two-step laser excitation. Rainbow satellite bands are observed and have been identified as due to maxima in the difference potentials 2PΣ-3DΣ, 2PΠ-3DΣ and 2PΛ-3PΣ, that are turn related to potential barriers in the upper 3PΣ and 3DΣ states. For identification of the satellites as well as understanding origin and shape of the potential barriers, approximate calculations were performed of interaction energies and dipole transition moments, that are based on the Fermi-Omont treatment of higher excited alkali-rare gas interaction. The satellite bands were analysed by means of semiclassical Uniform-Franck-Condon calculations of the spectra to yield values for characteristic parameters of the potential barriers. The results for position and height of the 3DΣ barrier are found to disagree more or less with values from different theoretical calculations.",{"EN":466},"Study of potential barriers in Σ states of Li* (3P, 3D)-rare gas collision molecules by means of laser excitation spectroscopy",{"VOID":468},"10.1007\u002FBF01426419","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF01426419",[471,486,498],{"id":472,"sortIndex":21,"researcher":20,"roles":473,"affiliations":474,"properties":483},"f6688331-6364-4efd-8ab5-c0cc265a560c",[98],[475],{"id":20,"sortIndex":21,"affiliation":476,"properties":20},{"id":477,"createTime":478,"updateTime":478,"relativeEntities":479,"slug":20,"properties":480,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"a06b1bcc-23a3-44be-841f-a86ff2f390a5","2024-01-12T08:05:16.586+00:00",[],{"title":481},{"VI":482},"Institut für Experimentalphysik, Universität Düsseldorf, Düsseldorf, Germany",{"title":484},{"VI":485},"A. Makonnen",{"id":487,"sortIndex":129,"researcher":20,"roles":488,"affiliations":489,"properties":495},"1d5f6ccd-a7d9-42a3-aacc-caced025c2b7",[98],[490],{"id":20,"sortIndex":21,"affiliation":491,"properties":20},{"id":477,"createTime":478,"updateTime":478,"relativeEntities":492,"slug":20,"properties":493,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":494},{"VI":482},{"title":496},{"VI":497},"W. Behmenburg",{"id":499,"sortIndex":157,"researcher":20,"roles":500,"affiliations":501,"properties":507},"75388a41-3845-44a4-8a79-84e095905985",[98],[502],{"id":20,"sortIndex":21,"affiliation":503,"properties":20},{"id":477,"createTime":478,"updateTime":478,"relativeEntities":504,"slug":20,"properties":505,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":506},{"VI":482},{"title":508},{"VI":509},"A. Kaiser",{"url":469,"publisher":511,"properties":531},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":512,"slug":10,"properties":513,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":517,"manageAffiliations":518,"indexDatabases":519,"url":20,"thumbnailPath":20,"statistic":526,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":514,"eissn":515,"title":516},{"VOID":13},{"VOID":15},{"EN":17},[],[],[520],{"id":26,"indexDatabase":521,"url":39,"indexYears":40,"academicFieldIds":20,"indexDatabaseRanking":41},{"id":28,"createTime":29,"updateTime":30,"relativeEntities":522,"label":523,"description":524,"key":36,"publicationTags":525,"standard":20},[],{"EN":33,"VI":33},{"EN":33,"VI":35},[38],{"impactFactor":21,"impactFactorByYear":527,"i10Index":44,"i10IndexLast5Year":21,"totalPublication":45,"totalPublicationByYear":528,"totalCitation":59,"totalCitationByYear":529,"totalCitationPerPublication":64,"totalCitationPerPublicationByYear":530,"hindexLast5Year":69,"hindex":69},{},{"1986":47,"1987":48,"1988":49,"1989":50,"1990":51,"1991":52,"1992":53,"1993":54,"1994":48,"1995":55,"1996":56,"1997":57,"2014":58},{"1990":61,"1996":62,"1997":63},{"1990":66,"1996":67,"1997":68},{"volume":532,"pages":534},{"VOID":533},"36",{"VOID":535},"325-337","1996-09-01",1996,{"id":539,"createTime":540,"updateTime":541,"relativeEntities":542,"slug":543,"properties":544,"entityType":89,"verifyStatus":90,"verifyTime":541,"verifyNote":91,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":553,"fullTextUrl":20,"authors":554,"publicationType":168,"publisherRelationship":640,"citationCount":20,"citationInfo":20,"publishDate":666,"publishYear":355,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":197},"fb355b67-dae9-4161-aa6f-b31ff8aa8d97","2023-12-28T19:52:54.811+00:00","2025-02-08T23:53:38.200+00:00",[],"Time-and-spectrally-resolved-fluorescence-of-Cl-2-and-ArCl-in-Cl2-doped-Ar-Under-state-selective-pulsed-photoexcitation-with-synchrotron-radiation",{"references":545,"abstract":547,"title":549,"doi":551},{"VOID":546},"Krauss, M., Mies, F.H.: Excimer lasers. In: Topics in Applied Physics. Rhodes, C. (ed.), Vol. 30, pp. 5–46. Berlin, Heidelberg, New York: Springer-Verlag 1979\nHay, P.J., Dunning, T.H.: J. Chem. Phys.69, 2209 (1978)\nDunning, T.H., Hay, P.J.: J. Chem. Phys.69, 134 (1978)\nBrau, Ch.A.: Excimer Lasers. In: Topics in Applied Physics. Rhodes, C. (ed.), Vol. 30, pp. 87–133. Berlin, Heidelberg, New York: Springer-Verlag 1979\nJohnson, T.H., Hunter, A.M.: J. Appl. Phys.51, 2406 (1980)\nSauerbrey, R., Walter, W., Tittel, F.K., Wilson, W.L.: J. Chem. Phys.78, 735 (1983)\nLiegel, J., Spiegel, H., Sauerbrey, R., Langhoff, H.: J. Chem. Phys.79, 247 (1983)\nVelazco, J.E., Kolts, J.H., Setser, D.W.: J. Chem. Phys.65, 3468 (1976)\nGundel, L.A., Setser, D.W., Clyne, M.A.A., Coxon, J.A., Nip, W.: J. Chem. Phys.64, 4390 (1976)\nGolde, M.F., Poletti, R.A.: Chem. Phys. Lett.80, 23 (1981)\nTamagake, K., Kolts, J.H., Setser, D.W.: J. Chem. Phys.71, 1264 (1979)\nInoue, G., Ku, J.K., Setser, D.W.: J. Chem. Phys.80, 6006 (1984)\nSetser, D.W., Ku, J.: Photophysics and photochemistry above 6 eV. pp. 621–637. Amsterdam: Elsevier 1985\nCastex, M.C., Le Calvé, J., Haaks, D., Jordan, B., Zimmerer G.: Chem. Phys. Lett.70, 106 (1980)\nLe Calvé, J., Castex, M.C., Haaks, D., Jordan, B., Zimmerer, G.: Nuovo Cimento63 B, 265 (1981)\nJordan, B.: Thesis, University of Hamburg (1983)\nZimmerer, G.: Photophysics and photochemistry above 6 eV. pp. 357–374. Amsterdam: Elsevier 1985\nMöller, T., Jordan, B., Gurtler, P., Zimmerer, G., Haaks, D., Le Calvé, J., Castex, M.C.: Chem. Phys.76, 295 (1983)\nMöller, T.: Diploma work, University of Hamburg (1982) and Int. Report DESY F41 — HASYLAB 82-07 (1982)\nDouglas, A.E.: Can. J. Phys.59, 835 (1981)\nLe Calvé, J., Castex, M.C., Jordan, B., Zimmerer, G., Möller, T., Haaks, D.: Photophysics and photochemistry above 6 eV. pp. 639–651. Amsterdem: Elsevier 1985\nHahn, V., Schwentner, N., Zimmerer, G.: Nucl. Instrum. Methods152, 261 (1978)\nMunro, I.H., Schwentner, N.: Nucl. Instrum. Methods208, 819 (1983)\nStriker, G.: Private communication\nWilcke, H., Bohmer, W., Haensel, R., Schwentner, N.: Nucl. Instrum. Methods208, 59 (1983)\nGürtler, P., Roick, E., Zimmerer, G., Pouey, M.: Nucl. Instrum. Methods208, 835 (1983)\nMcCusker, M.: Excimer lasers. In: Topics in Applied Physics. Rhodes, C. (ed.), Vol. 30, pp. 47–86. Berlin, Heidelberg, New York: Springer-Verlag 1979\nDiegelmann, M., Hohla, K., Rebentrost, F., Kompa, K.L.: J. Chem. Phys.76, 1233 (1982)\nYu, Y.C.: Ph. D. Thesis, Kansas State University (1984)\nHuber, K.P., Herzberg, G.: Molecular spectra and molecular structure. New York, Toronto: van Nostrand Reinhold Company 1979\nRosenstock, H.M., Draxl, K., Steiner, B.W., Herron, J.T.: J. Phys. Chem. Ref. Data6, Sup. 1 (1977) (Energetics of gaseous ions, N.B.S. publication)\nBrau, C.A., Ewing, J.J.: J. Chem. Phys.63, 4640 (1975)\nPeyerimhoff, S.D., Buenker, R.J.: Chem. Phys.57, 279 (1981)\nWilson, M.W., Rohschild, M., Rhodes, C.K.: J. Chem. Phys.78, 3779 (1983)\nZuev, V.S., Kanaev, A.V., Mikheev, L.D.: Sov. J. Quant. Electron.14, 242 (1984)\nRice, S.A., Klemperer, W.: J. Chem. Phys.27, 573 (1957)\nSmith, I.W.M.: Kinetics and dynamics of elementary gas reactions. Butterworth Monographs in Chemistry (1981)\nRapp, D., Kassal, T.: Chem. Rev.69, 61 (1969)\nLorents, D.C.: Lasers'84 Conference and private communication\nDurrett, M.G.: Master thesis, University of Houston (1982)\nDreiling, T.D., Setser, D.W.: J. Chem. Phys.75, 4360 (1981)\nBibinov, N.K., Vinogradov, I.P.: Sov. J. Quant. Electron.13, 1286 (1983)\nHelm, H., Jusinski, L.E., Lorents, D.C., Huestis, D.L.: J. Chem. Phys.80, 1796 (1984)\nLiegel, J.: Thesis, University of Würzburg (1984)\nHess, B., Buenker, R.J.: Private communication",{"EN":548},"Synchrotron Radiation is used to selectively excite chlorine and Cl2 doped argon in the VUV region. Stationary fluorescence and excitation spectra of the 11Σ\n                  \n                    \n                  \n                  +\n                , 21Σ\n                  \n                    \n                  \n                  +\n                 and 23Πg Cl\n                  2\n                  *\n                 states and of the ArCl*(B−X) transition are obtained. The excitation threshold of ArCl*(B) in Ar\u002FCl2 system is found to be 1,285±5 Å and that of ArCl(C) at ∼1,260 Å. The formation of ArCl* and Cl*2(23Πg) is discussed in terms of recent potential curves data. A detailed time resolved study is reported which allows us to determine precisely the radiative lifetime of ArCl*(B) state (5.2 ns) and numerous kinetic parameters of this system, to estimate theC state energy and to discuss the relaxation and mixing process of the ArCl*(B) and (C) states. A two ladder multilevel kinetic model is described which accounts for the experimental results and shows the difficulty of studying this particular ArCl* system as compared to the closely related XeCl* and KrCl* ones.",{"EN":550},"Time and spectrally resolved fluorescence of Cl*2 and ArCl* in Cl2 doped Ar Under state selective pulsed photoexcitation with synchrotron radiation",{"VOID":552},"10.1007\u002FBF01432500","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF01432500",[555,571,586,598,613,625],{"id":556,"sortIndex":557,"researcher":20,"roles":558,"affiliations":559,"properties":568},"c00fde4a-44d5-4ba8-ae1a-3f162e8673ec",5,[98],[560],{"id":20,"sortIndex":21,"affiliation":561,"properties":20},{"id":562,"createTime":563,"updateTime":563,"relativeEntities":564,"slug":20,"properties":565,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"3b31f723-6861-4c4d-965f-237f76c44610","2023-12-05T09:34:17.765+00:00",[],{"title":566},{"VI":567},"Laboratoire des Interactions Moléculaires et des Hautes Pressions du C.N.R.S., Centre Universitaire Paris-Nord, Villetaneuse, France",{"title":569},{"VI":570},"M. -C. Castex",{"id":572,"sortIndex":157,"researcher":20,"roles":573,"affiliations":574,"properties":583},"7cacba60-dc40-4705-bc07-e7e510034f52",[98],[575],{"id":20,"sortIndex":21,"affiliation":576,"properties":20},{"id":577,"createTime":578,"updateTime":578,"relativeEntities":579,"slug":20,"properties":580,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"d963b771-674a-4491-8296-61442d1f1070","2024-01-04T06:00:26.919+00:00",[],{"title":581},{"VI":582},"II. Institut für Experimentalphysik der Universität, Hamburg, Federal Republic of Germany",{"title":584},{"VI":585},"B. Jordan",{"id":587,"sortIndex":129,"researcher":20,"roles":588,"affiliations":589,"properties":595},"b90ad741-1bb7-4897-b9f0-3e761031d052",[98],[590],{"id":20,"sortIndex":21,"affiliation":591,"properties":20},{"id":577,"createTime":578,"updateTime":578,"relativeEntities":592,"slug":20,"properties":593,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":594},{"VI":582},{"title":596},{"VI":597},"G. Zimmerer",{"id":599,"sortIndex":116,"researcher":20,"roles":600,"affiliations":601,"properties":610},"47fd262a-a716-4bbd-a03c-5634006efa8d",[98],[602],{"id":20,"sortIndex":21,"affiliation":603,"properties":20},{"id":604,"createTime":605,"updateTime":605,"relativeEntities":606,"slug":20,"properties":607,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"49ac6b1c-8096-424a-aea0-593ff6e42d89","2023-12-28T19:52:54.879+00:00",[],{"title":608},{"VI":609},"FB Physikalische Chemie der Universität, GHS Wuppertal, Federal Republic of Germany",{"title":611},{"VI":612},"D. 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Szymonski, J. Kolodziej, P. Czuba, P. Piatkowski, A. Poradzisz, N. H. Tolk, and J. Fine, Phys. Rev. Letts. 67, 1906 (1991), and references therein\nX. Li, R. D. Beck, and R. L. Whetten, Phys. Rev. Letts. 68, 3420 (1992)\nR. D. Beck, P. St. John, M. L. Homer, and R. L. Whetten, Science 253, 879 (1991)\nH. J. Hwang, D. K. Sensharma, and M. A. El-Sayed, Phys. Rev. Letts. 64, 808 (1990)\nC. K. Fagerquist, D. K. Sensharma, and M. A. El-Sayed, J. Phys. Chem. 95, 9169 (1991), and ibid. 9176\nT. Leisner, O. Echt, O. Kandler, D. Kreisle, and E. Recknagel, Int. J. Mass Spectrom. Ion Proc. 87, R19 (1989)\nT. Jerger, M. Maier-Borst, D. Kreisle, and E. Recknagel, in preparation\nT. P. Martin, Phys. Rep. 95, 3 (1983), and J. Diefenbach and T. P. Martin, J. Chem. Phys. 83, 4585 (1985)\nY. A. Yang, L. A. Bloomfield, C. Jin, L. S. Wang, and R. E. Smalley, J. Chem. Phys. 96, 2453 (1992)",{"EN":677},"Silver iodide clusters have been generated by inert gas condensation technique, ionized via electron impact, and mass analyzed in a reflectron equipped time-of-flight mass spectrometer. The mass spectra are dominated by cluster ions of the composition (AgnIn−1)+. Additional kinetic energy analysis is applied to detect metastable decay of the cluster ions for n up to 30. In contrast to alkali halides, where halogen and monomer desorption had been observed, the main decay channel of silver iodide cluster ions is the loss of a neutral trimer Ag3I3.",{"EN":679},"A novel desorption mechanism of (AgnIn−1)+ cluster ions",{"VOID":681},"10.1007\u002FBF01429137","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF01429137",[684,699,711],{"id":685,"sortIndex":129,"researcher":20,"roles":686,"affiliations":687,"properties":696},"ad2410f6-b32c-4f6a-a8a1-39ee56750f45",[98],[688],{"id":20,"sortIndex":21,"affiliation":689,"properties":20},{"id":690,"createTime":691,"updateTime":691,"relativeEntities":692,"slug":20,"properties":693,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"9aad1c1b-e9f8-4660-a724-1da81902e776","2023-12-13T19:37:40.934+00:00",[],{"title":694},{"VI":695},"Fakultät für Physik, Universität Konstanz, Konstanz, Germany",{"title":697},{"VI":698},"E. 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Rep. 199, 231 (1991) for a review, and references therein\nYeazell, J.A., Mallieu, M., Stroud Jr., C.R.: Phys. Rev. Lett. 64, 2007 (1990)\nNauenberg, M.: J. Phys. B 23, L 385 (1990)\nYeazell, J.A., Stroud Jr., C.R.: Phys. Rev. A 43, 5153 (1991)\nMeacher, D.R., Meyler, P.E., Hughes, I.G., Ewart, P.: J. Phys. B 24, L 63 (1991)\nLena, C., Delande, D., Gay, J.C.: Europhys. Lett. 15, 697 (1991)\nPeres, A.: Phys. Rev. A 47, 5196 (1993)\nBraun, P.A., Savichev, V.I.: Phys. Rev. A 49, 1704 (1994)\nBluhm, R., Kostelecky, V.A.: Phys. Rev. A 50, R4445 (1994)\nEhlich, R., Campbell, E.E.B., Knospe, O., Schmidt, R.: Z. Phys. D 28, 153 (1993)\nWang, L.S., Conceicao, J.J., Jin, C.M., Smalley, R.E.: Chem. Phys. Lett. 182, 5 (1991)\nYabana, K., Bertsch, G.F.: Phys. Scr. 48, 633 (1993)\nUlmer, G., Campbell, E.E.B., Kühnle, R., Busmann, H.-G., Hertel, I.V.: Chem. Phys. Lett. 182, 114 (1991); Yeretzian, C., Hansen, K., Diederich, F., Whetten R.L.: Nature 359, 44 (1992)\nCoe, J.: private communication\nKnospe, O., Schmidt, R.: to be published",{"EN":760},"An alternative class of Rydberg systems is presented consisting of two oppositely charged atomic clusters in a bound state with high angular momentum and large binding energy (“Rydberg clusters”). The basic structural properties, the stability and possible formation processes of these states are discussed.",{"EN":762},"Rydberg clusters",{"VOID":764},"10.1007\u002Fs004600050012","2024-12-21T23:51:08.413+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs004600050012",[768,783],{"id":769,"sortIndex":21,"researcher":20,"roles":770,"affiliations":771,"properties":780},"28697221-7abc-46bd-a28b-fc59312745a5",[98],[772],{"id":20,"sortIndex":21,"affiliation":773,"properties":20},{"id":774,"createTime":775,"updateTime":775,"relativeEntities":776,"slug":20,"properties":777,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"8f1cfce5-c36d-4819-a84a-c47b49893626","2024-01-25T11:36:59.286+00:00",[],{"title":778},{"VI":779},"Technische Universität Dresden, Institut für Theoretische Physik, Dresden, Germany",{"title":781},{"VI":782},"O. 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R., Pal, P.; Adv. Chem. Phys.20, 161 (1971)\nHoare, M. R., Pal, P.; Adv. Chem. Phys.24, 645 (1975)\nYacaman, M. J., Heinemann, K., Yang, C.Y., Poppa, H., J. Cryst. Growth47, 187 (1979)\nHowie, A., Marks, L.D.; Phil. Mag.;A49 95 (1984)\nMarks, L. D., Smith, D. J.; J. Cryst. Growth54 425 (1981)\nPenisson, J-M, Renou, A.; J. Cryst. Growth102 585 (1990)\nFuchs, G., Neiman, D., Poppa, H.; Langmuir7 2853 (1991)\nDaw, M. S., Baskes, M. I.; Phys. Rev B.29, 6443 (1984)\nFoiles, S. M..; Surf. Sci.191, L779 (1987).\nSchwoebel, P. R., Foiles, S.M., Bisson, C.L., Kellogg, G.L.; Phys. Rev. B42, 9409 (1989)\nSachdev, A., Masel, R.I., Adams, J. B.; J. Catal.136, 320 (1992)\nBigot, B., Minot, C.; J. Am. Chem. Soc.106, 6601 (1984)\nFayet, P., Kaldor, A., Cox, D.M., J. Chem. Phys.92, 254 (1990).",{"EN":833},"The embedded atom method (EAM) was used to determine the equilibrium shapes of small platinum and palladium clusters (N=5–60 atoms). The stability of various polyhedral symmetries was performed at 0K. A search for the presence of any other lower energy structures was also carried out. Pt clusters reconstructed to lower energy clusters even at the magic numbers. Pd also reconstructed to lower energy structures except at the magic number sizes where the icosahedron was found to be the most stable.",{"EN":835},"An embedded atom method study of the equilibrium shapes of small platinum and palladium clusters",{"VOID":837},"10.1007\u002FBF01429178","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF01429178",[840,855,867],{"id":841,"sortIndex":21,"researcher":20,"roles":842,"affiliations":843,"properties":852},"0ff3e010-659d-48c9-af79-da00c8cf6db3",[98],[844],{"id":20,"sortIndex":21,"affiliation":845,"properties":20},{"id":846,"createTime":847,"updateTime":847,"relativeEntities":848,"slug":20,"properties":849,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"dc5294ce-22cf-40e1-8a37-82d724b9d596","2024-01-10T05:20:11.739+00:00",[],{"title":850},{"VI":851},"Department of Chemical Engineering, University of Illinois at Urbana-Champaign, Urbana, USA",{"title":853},{"VI":854},"A. 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L., Dickinson, A.S., Lewis, E. L.: J. Phys. B 19, 4087 (1986)\nReid, R. H. G.: J. Phys. B 6, 2018 (1973)\nBrust, J., Movre, M., Niemax, K.: Z. Phys. D 27, 243 (1993)\nNikitin, E.E.: J. Chem. Phys. 43, 744 (1965)\nDashevskaya, F. I., Nikitin, E.E., Reznikow, A. I.: Chem. Phys. 53, 1175 (1970)\nArbes, F., Gudjons, T., Kurth, F., Werth, G., Marin, F., Inguscio, M.: Z. Phys. D 25, 295 (1993)\nUrabe, S., Hayasaka, K., Watanabe, M., Imajo, H., Ohmukai, R.: Jpn. J. Appl. Phys. 33, 1590 (1994)\nKnoop, M., Vedel, M., Vedel, F.: J. Phys. II France 4, 1639 (1994)\nKnoop, M., Vedel, M., Vedel, F.: Phys. Rev. A 52, 3763 (1995)\nCzuchaj, E., Rebentrost, F., Stoll, H., Preuss, H.: Chem. Phys. 207, 51 (1996)\nBrink, D.M., Satchler, G.R.: Angular Momentum, 2nd ed. (Clarendon, Oxford, 1968)\nGrawert, G.: Z. Phys. 225, 283 (1969)\nJohnson, B.R.: J. Comp. Phys. 13, 445 (1973)\nAlexander, M. H., Orlikowski, T., Stroub, J.E.: Phys. Rev. A 28, 73 (1983)\nPaul-Kwiek, E., Orlikowski, T.: Mol. Phys. 84, 971 (1995)",{"EN":916},"Cross sections for the j\n                1\n                m\n                1 → j\n                2\n                m\n                2 transitions in the resonance 4p\n                2P and metastable 3d\n                2D states of the singly charged calcium ion induced by collisions with the ground-state He atom have been calculated using the quantal close-coupling method. The calculations are based on the earlier obtained Ca+-He pseudopotential SCF potential energy curves. The calculated cross sections are discussed in the energy range from threshold to 1.5 eV. Satisfactory agreement with other theoretical results has been found for the 4p 2P state. However, relatively large discrepancy between theory and available experimental data still exists for both the Ca+ states.",{"EN":918},"Quantal close-coupling calculation of the cross sections for the j 1 m 1 → j 2 m 2 transitions in the 4p 2P and 3d 2D excited states of Ca+ induced by collisions with helium",{"VOID":920},"10.1007\u002Fs004600050294","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs004600050294",[923,939],{"id":924,"sortIndex":21,"researcher":20,"roles":925,"affiliations":926,"properties":936},"6e2f3011-bb90-468d-81ea-d483e1c9b0a2",[98],[927],{"id":20,"sortIndex":21,"affiliation":928,"properties":20},{"id":929,"createTime":930,"updateTime":930,"relativeEntities":931,"slug":932,"properties":933,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"b1f3a1f0-a505-4fc3-85f3-0a03db9ee59b","2023-11-27T19:10:44.973+00:00",[],"Institute-of-Theoretical-Physics-and-Astrophysics-University-of-Gda%C5%84sk-Gda%C5%84sk-Poland",{"title":934},{"VI":935},"Institute of Theoretical Physics and Astrophysics, University of Gdańsk, Gdańsk, Poland",{"title":937},{"VI":938},"E. Paul-Kwiek",{"id":940,"sortIndex":157,"researcher":20,"roles":941,"affiliations":942,"properties":948},"4b379097-3c3e-49ee-8d74-880bda2c7c07",[98],[943],{"id":20,"sortIndex":21,"affiliation":944,"properties":20},{"id":929,"createTime":930,"updateTime":930,"relativeEntities":945,"slug":932,"properties":946,"entityType":110,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":947},{"VI":935},{"title":949},{"VI":950},"E. 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