Диссертация (1105684), страница 31
Текст из файла (страница 31)
7.– P. 546-550.Suntivich, J., May, K.J., Gasteiger, H.A., Goodenough, J.B., Shao-Horn, Y. A perovskite oxideoptimized for oxygen evolution catalysis from molecular orbital principles // Science.– 2011.–V. 334.– N. 6061.– P. 1383-1385.Zhou, E.Y.a.H. Li−Air Rechargeable Battery Based on Metal-free Graphene Nanosheet Catalysts// ACS Nano.– 2011.– V. 5.– N.
4.– P. 3020-3026.72.Xu, Y., Shelton, W.A. Oxygen Reduction by Lithium on Model Carbon and Oxidized CarbonStructures // Journal of The Electrochemical Society.– 2011.– V. 158.– N. 10.– P. A1177.73.Xiao, J., Mei, D., Li, X., Xu, W., Wang, D., Graff, G.L., Bennett, W.D., Nie, Z., Saraf, L.V., Aksay,I.A., Liu, J., Zhang, J.G.
Hierarchically porous graphene as a lithium-air battery electrode // Nanoletters.– 2011.– V. 11.– N. 11.– P. 5071-5078.74.Mitchell, R.R., Gallant, B.M., Thompson, C.V., Shao-Horn, Y. All-carbon-nanofiber electrodesfor high-energy rechargeable Li–O2 batteries // Energy & Environmental Science.– 2011.– V.4.– N. 8.– P. 2952.17175.76.77.78.79.80.81.82.83.84.85.86.87.88.89.90.91.92.93.Rosenthal, A.A.F.a.I. Chemical reactions of superoxide anion radical in aprotic solvents //Photochemistry and Photobiology.– 1978.– V. 28.– N.
P. 711-719.Campbell, C.T. Atomic and molecular oxygen adsorption on Ag(111) // Surface Science.– 1985.–V. 157.– N. 1.– P. 43-60.Dathar, G.K., Shelton, W.A., Xu, Y. Trends in the Catalytic Activity of Transition Metals for theOxygen Reduction Reaction by Lithium // J Phys Chem Lett.– 2012.– V. 3.– N. 7.– P. 891-895.Erlebacher, Y.D.Y.-J.K.a.J. Nanoporous Gold Leaf : "Ancient Technology"/ Advanced Material// Adv. Mater. .– 2004.– V. 16.– N. 21.– P.
1897-1900.Föppl, H. Die Kristallstrukturen der Alkaliperoxyde // Zeitschrift für anorganische undallgemeine Chemie.– 1957.– V. 291.– N. 1-4.– P. 12-50.Chan, M.K.Y., Shirley, E.L., Karan, N.K., Balasubramanian, M., Ren, Y., Greeley, J.P., Fister,T.T. Structure of Lithium Peroxide // The Journal of Physical Chemistry Letters.– 2011.– V. 2.–N. 19.– P.
2483-2486.Radin, M.D., Rodriguez, J.F., Tian, F., Siegel, D.J. Lithium peroxide surfaces are metallic, whilelithium oxide surfaces are not // Journal of the American Chemical Society.– 2012.– V. 134.– N.2.– P. 1093-1103.Qiao, R., Chuang, Y.D., Yan, S., Yang, W. Soft x-ray irradiation effects of Li(2)O(2), Li(2)CO(3)and Li(2)O revealed by absorption spectroscopy // PloS one.– 2012.– V. 7.– N. 11.– P. e49182.Yang, J., Zhai, D., Wang, H.H., Lau, K.C., Schlueter, J.A., Du, P., Myers, D.J., Sun, Y.K., Curtiss,L.A., Amine, K. Evidence for lithium superoxide-like species in the discharge product of a Li-O2battery // Physical chemistry chemical physics : PCCP.– 2013.– V. 15.– N.
11.– P. 3764-3771.Viswanathan, V., Thygesen, K.S., Hummelshoj, J.S., Norskov, J.K., Girishkumar, G., McCloskey,B.D., Luntz, A.C. Electrical conductivity in Li2O2 and its role in determining capacity limitationsin non-aqueous Li-O2 batteries // The Journal of chemical physics.– 2011.– V. 135.– N. 21.– P.214704.Dunst, A., Epp, V., Hanzu, I., Freunberger, S., Wilkening, M. Short-range Li diffusion vs longrange ionic conduction in nanocrystalline lithium peroxide Li2O2 — the discharge product inlithium-air batteries // Energy & Environmental Science.– 2014.– V. N. P.Tian, F., Radin, M.D., Siegel, D.J. Enhanced Charge Transport in Amorphous Li2O2 //Chemistry of Materials.– 2014.– V.
26.– N. 9.– P. 2952-2959.Geng, W.T., Ohno, T. Li2O2Wetting on the (110) Surface of RuO2, TiO2, and SnO2: AnInitiating Force for Polycrystalline Growth // The Journal of Physical Chemistry C.– 2015.– V.119.– N. 2.– P. 1024-1031.McCloskey, B.D., Scheffler, R., Speidel, A., Girishkumar, G., Luntz, A.C. On the Mechanism ofNonaqueous Li–O2Electrochemistry on C and Its Kinetic Overpotentials: Some Implications forLi–Air Batteries // The Journal of Physical Chemistry C.– 2012.– V. 116.– N. 45.– P. 2389723905.Wolter, O., Heitbaum, J. Differential Electrochemical Mass Spectroscopy (DEMS) — a NewMethod for the Study of Electrode Processes // Berichte der Bunsengesellschaft für physikalischeChemie.– 1984.– V. 88.– N.
1.– P. 2-6.Baltruschat, H. Differential electrochemical mass spectrometry // Journal of the AmericanSociety for Mass Spectrometry.– 2004.– V. 15.– N. 12.– P. 1693-1706.Itoh, T., Abe, K., Mohamedi, M., Nishizawa, M., Uchida, I. In situ SERS spectroscopy of Agmodified pyrolitic graphite in organic electrolytes // Journal of Solid State Electrochemistry.–2001.– V. 5.– N.
P. 328-333.Salmeron, M., Schlogl, R. Ambient pressure photoelectron spectroscopy: A new tool for surfacescience and nanotechnology // Surface Science Reports.– 2008.– V. 63.– N. 4.– P. 169-199.Starr, D.E., Liu, Z., Havecker, M., Knop-Gericke, A., Bluhm, H. Investigation of solid/vaporinterfaces using ambient pressure X-ray photoelectron spectroscopy // Chemical Societyreviews.– 2013.– V. 42.– N.
13.– P. 5833-5857.17294.95.96.97.98.99.100.101.102.103.104.105.106.107.108.109.Weatherup, R.S., Eren, B., Hao, Y., Bluhm, H., Salmeron, M.B. Graphene Membranes forAtmospheric Pressure Photoelectron Spectroscopy // J Phys Chem Lett.– 2016.– V. 7.– N. 9.– P.1622-1627.Andrei Kolmakov, D.A.D., Laura J.
Cote, Jiaxing Huang, Majid Kazemian Abyaneh,, MatteoAmati, L.G., Sebastian Guntherand Maya Kiskinova Graphene oxide windows for in situenvironmental cell photoelectron spectroscopy // Nature Nanotechnology.– 2011.– V. 6.– N. P.651-657.Lu, Y.C., Crumlin, E.J., Veith, G.M., Harding, J.R., Mutoro, E., Baggetto, L., Dudney, N.J., Liu,Z., Shao-Horn, Y. In situ ambient pressure X-ray photoelectron spectroscopy studies of lithiumoxygen redox reactions // Scientific reports.– 2012.– V. 2.– N.
P. 715.Itkis, D.M., Semenenko, D.A., Kataev, E.Y., Belova, A.I., Neudachina, V.S., Sirotina, A.P.,Havecker, M., Teschner, D., Knop-Gericke, A., Dudin, P., Barinov, A., Goodilin, E.A., ShaoHorn, Y., Yashina, L.V. Reactivity of Carbon in Lithium-Oxygen Battery Positive Electrodes //Nano letters.– 2013.– V. 13.– N. 10.– P.
4697–4701.DeCaluwe, S.C., Grass, M.E., Zhang, C., Gabaly, F.E., Bluhm, H., Liu, Z., Jackson, G.S.,McDaniel, A.H., McCarty, K.F., Farrow, R.L., Linne, M.A., Hussain, Z., Eichhorn, B.W. In SituCharacterization of Ceria Oxidation States in High-Temperature Electrochemical Cells withAmbient Pressure XPS // The Journal of Physical Chemistry C.– 2010.– V.
114.– N. 46.– P.19853-19861.Levi, M.D., Levy, N., Sigalov, S., Salitra, G., Aurbach, D., Maier, J. Electrochemical QuartzCrystal Microbalance (EQCM) Studies of Ions and Solvents Insertion into Highly PorousActivated Carbons // Journal of the American Chemical Society.– 2010.– V. 132.– N. 38.– P.13220-13222.Sharon, D., Etacheri, V., Garsuch, A., Afri, M., Frimer, A.A., Aurbach, D. On the Challenge ofElectrolyte Solutions for Li-Air Batteries: Monitoring Oxygen Reduction and Related Reactionsin Polyether Solutions by Spectroscopy and EQCM // J Phys Chem Lett.– 2013.– V.
4.– N. 1.–P. 127-131.Schneider, T.W., Buttry, D.A. Electrochemical quartz crystal microbalance studies of adsorptionand desorption of self-assembled monolayers of alkyl thiols on gold // Journal of the AmericanChemical Society.– 1993.– V. 115.– N. 26.– P. 12391-12397.Lim, H., Yilmaz, E., Byon, H.R. Real-Time XRD Studies of Li–O2 Electrochemical Reaction inNonaqueous Lithium–Oxygen Battery // The Journal of Physical Chemistry Letters.– 2012.– V.3.– N.
21.– P. 3210-3215.Ganapathy, S., Adams, B.D., Stenou, G., Anastasaki, M.S., Goubitz, K., Miao, X.F., Nazar, L.F.,Wagemaker, M. Nature of Li2O2 oxidation in a Li-O2 battery revealed by operando X-raydiffraction // Journal of the American Chemical Society.– 2014.– V. 136.– N. 46.– P. 1633516344.Zheng, H., Xiao, D., Li, X., Liu, Y., Wu, Y., Wang, J., Jiang, K., Chen, C., Gu, L., Wei, X., Hu,Y.S., Chen, Q., Li, H. New insight in understanding oxygen reduction and evolution in solid-statelithium-oxygen batteries using an in situ environmental scanning electron microscope // Nanoletters.– 2014.– V.
14.– N. 8.– P. 4245-4249.Zhong, L., Mitchell, R.R., Liu, Y., Gallant, B.M., Thompson, C.V., Huang, J.Y., Mao, S.X., ShaoHorn, Y. In situ transmission electron microscopy observations of electrochemical oxidation ofLi2O2 // Nano letters.– 2013.– V. 13.– N. 5.– P. 2209-2214.Krasheninnikov Structural Defects in Graphene // V. N. P.Castro Neto, A.H., Guinea, F., Peres, N.M.R., Novoselov, K.S., Geim, A.K. The electronicproperties of graphene // Reviews of Modern Physics.– 2009.– V. 81.– N.
1.– P. 109-162.Painter, G., Ellis, D. Electronic Band Structure and Optical Properties of Graphite from aVariational Approach // Physical Review B.– 1970.– V. 1.– N. 12.– P. 4747-4752.Усачёв, Д.Ю., Синтез и управления электронной структурой систем на основе графена,Санкт-Петербургский Государственный Университет, Санкт-Петербург, 2015, p. 258.173110.111.112.113.114.115.116.117.118.119.120.121.122.123.124.125.126.127.128.Novoselov, K.S., Geim, A.K., Morozov, S.V., Jiang, D., Zhang, Y., Dubonos, S.V., Grigorieva,I.V., Firsov, A.A. Electric field effect in atomically thin carbon films // Science.– 2004.– V. 306.–N. 5696.– P.
666-669.Park, S., Ruoff, R.S. Chemical methods for the production of graphenes // Nat Nanotechnol.–2009.– V. 4.– N. 4.– P. 217-224.Ji, S.H., Hannon, J.B., Tromp, R.M., Perebeinos, V., Tersoff, J., Ross, F.M. Atomic-scaletransport in epitaxial graphene // Nat Mater.– 2012.– V. 11.– N. 2.– P. 114-119.Zhang, Y., Zhang, L., Zhou, C. Review of Chemical Vapor Deposition of Graphene and RelatedApplications // Accounts of Chemical Research.– 2013.– V.















