Topics in Current Chemistry (2019) 377:11
1 3
24. Idriss H (2004) Ethanol reaction over the surfaces of noble metal/cerium oxide catalysts. Platin
Met Rev 48:105–115
25. Haryanto A, Fernando S, Murali N, Adhikari S (2005) Current status of hydrogen production techniques by steam reforming of ethanol: a review. Energy Fuels 19:2098–2106
26. Erini N, Loukrakpam R, Petkov V, Baranova AL, Yang R, Teschner D, Huang Y, Brankovic
SR, Straser P (2014) Ethanol electro-oxidation on ternary platinum–rhodium–tin nanocatalysts:
insights in the atomic 3D structure of the active catalytic phase. ACS Catal 4:1859–1867
27. Bai J, Xiao X, Xue YY, Jiang JX, Zeng JH, Li XF, Chen Y (2018) Bimetallic platinum–rhodium
alloy nanodendrites as highly active electrocatalyst for the ethanol oxidation reaction. ACS Appl
Mater Interfaces 10(23):19755–19763
28. Lopez-Suarez FE, Perez-Cadenas M, Bueno-Lopez A, Carvalho-Filho CT, Eguiluz KIB, Salazar-Banda GR (2015) Platinum–rhodium–tin/carbon electrocatalysts for ethanol oxidation in
acid media: effect of the precursor addition order and the amount of tin. J Appl Electrochem
45(10):1057–1068
29. Delpeuch AB, Asset T, Chatenet M, Cremers C (2014) Electrooxidation of ethanol at room temperature on carbon-supported Pt and Rh-containing catalysts: a DEMS study. J Electrochem Soc
161:F918–F924
30. Cantane DA, Ambrosio WF, Chatenet M, Lima FHB (2012) Electro-oxidation of ethanol on Pt/C,
Rh/C, and Pt/Rh/C-based electrocatalysts investigated by on-line DEMS. J Electroanal Chem
681:56–65
31. Li M, Cullen D, Sasaki K, Marinkovic NS, More K, Adzic RR (2013) Ternary electrocatalysts for
oxidizing ethanol to carbon dioxide: making Ir capable of splitting C–C bond. J Am Chem Soc
135:132–141
32. Li M, Liu P, Adzic RR (2012) Pt monolayer electrocatalysts for oxidation of alcohol molecules. J
Phys Chem Lett 3:3480–3485
33. Harrick NJ (1967) Internal reflection spectroscopy. Wiley, New York, pp 1–327
34. Bewick A (1986) A molecular structure and orientation in the electrode/electrolyte solution interface—in situ IR spectroscopy. In: Fernando Silva A (ed) Trends in interfacial electrochemistry, vol
179. Springer, Amsterdam, pp 331–358
35. Antonio Berna A, Rodes A, Feliu JM (2007) In-situ FTIR studies on the acid–base equilibria of
adsorbed species on well-defined metal electrode surfaces. In: Sun S-G, Christensen PA, Wieckowski A (eds) In-situ spectroscopic studies of adsorption at the electrode and electrocatalysis. Elsevier, Amsterdam, pp 1–32
36. Leger J-M, Hahn F (2007) Contribution of in situ infrared reflectance spectroscopy in the study
of nanostructured fuel cell electrodes. In: Sun S-G, Christensen PA, Wieckowski A (eds) In-situ
spectroscopic studies of adsorption at the electrode and electrocatalysis. Elsevier, Amsterdam, pp
63–98
37. Korzeniewski C (2007) Recent advances in in situ infrared spectroscopy and applications in singlecrystal electrochemistry and electrocatalysis. In: Sun S-G, Christensen PA, Wieckowski A (eds) Insitu spectroscopic studies of adsorption at the electrode and electrocatalysis. Elsevier, Amsterdam,
pp 179–208
38. Osawa M (2009) In-situ surface-enhanced infrared spectroscopy of the electrode/solution interface.
In: Alkire RC, Kolb DM, Lipkowski J, Ross PN (eds) Advances in electrochemical science and
engineering. Diffraction and spectroscopic methods in electroelectrochemistry, vol 9. Wiley, New
York, pp 269–314
39. Li M, Marinkovic NS (2013) In situ infrared spectroelectrochemistry: principles and applications.
In: Cozzolino D (ed) Infrared spectroscopy: theory, developments and applications. Nova Science
Publishers, Hauppauge, pp 307–332
40. Zamlynny V, Lipkowski J (2009) Quantitative SNIFTIRS and PM IRRAS of organic molecules at
electrode surfaces. In: Alkire RC, Kolb DM, Lipkowski J, Ross PN (eds) Advances in electrochemical science and engineering. Diffraction and spectroscopic methods in electroelectrochemistry, vol
9. Wiley, New York, pp 315–376
41. Greenler RG (1966) Infrared study of adsorbed molecules on metal surfaces by reflection techniques. J Chem Phys 44:310–315
42. Greenler RG (1969) Reflection method for obtaining the infrared spectrum of a thin layer on a
metal surface. J Chem Phys 50:1963–1968
43. Greenler RG (1975) Design of a reflection–absorption experiment for studying the IR spectrum of
molecules adsorbed on a metal surface. J Vac Sci Technol 12:1410–1417
Reprinted from the journal
36
1 3
24. Idriss H (2004) Ethanol reaction over the surfaces of noble metal/cerium oxide catalysts. Platin
Met Rev 48:105–115
25. Haryanto A, Fernando S, Murali N, Adhikari S (2005) Current status of hydrogen production techniques by steam reforming of ethanol: a review. Energy Fuels 19:2098–2106
26. Erini N, Loukrakpam R, Petkov V, Baranova AL, Yang R, Teschner D, Huang Y, Brankovic
SR, Straser P (2014) Ethanol electro-oxidation on ternary platinum–rhodium–tin nanocatalysts:
insights in the atomic 3D structure of the active catalytic phase. ACS Catal 4:1859–1867
27. Bai J, Xiao X, Xue YY, Jiang JX, Zeng JH, Li XF, Chen Y (2018) Bimetallic platinum–rhodium
alloy nanodendrites as highly active electrocatalyst for the ethanol oxidation reaction. ACS Appl
Mater Interfaces 10(23):19755–19763
28. Lopez-Suarez FE, Perez-Cadenas M, Bueno-Lopez A, Carvalho-Filho CT, Eguiluz KIB, Salazar-Banda GR (2015) Platinum–rhodium–tin/carbon electrocatalysts for ethanol oxidation in
acid media: effect of the precursor addition order and the amount of tin. J Appl Electrochem
45(10):1057–1068
29. Delpeuch AB, Asset T, Chatenet M, Cremers C (2014) Electrooxidation of ethanol at room temperature on carbon-supported Pt and Rh-containing catalysts: a DEMS study. J Electrochem Soc
161:F918–F924
30. Cantane DA, Ambrosio WF, Chatenet M, Lima FHB (2012) Electro-oxidation of ethanol on Pt/C,
Rh/C, and Pt/Rh/C-based electrocatalysts investigated by on-line DEMS. J Electroanal Chem
681:56–65
31. Li M, Cullen D, Sasaki K, Marinkovic NS, More K, Adzic RR (2013) Ternary electrocatalysts for
oxidizing ethanol to carbon dioxide: making Ir capable of splitting C–C bond. J Am Chem Soc
135:132–141
32. Li M, Liu P, Adzic RR (2012) Pt monolayer electrocatalysts for oxidation of alcohol molecules. J
Phys Chem Lett 3:3480–3485
33. Harrick NJ (1967) Internal reflection spectroscopy. Wiley, New York, pp 1–327
34. Bewick A (1986) A molecular structure and orientation in the electrode/electrolyte solution interface—in situ IR spectroscopy. In: Fernando Silva A (ed) Trends in interfacial electrochemistry, vol
179. Springer, Amsterdam, pp 331–358
35. Antonio Berna A, Rodes A, Feliu JM (2007) In-situ FTIR studies on the acid–base equilibria of
adsorbed species on well-defined metal electrode surfaces. In: Sun S-G, Christensen PA, Wieckowski A (eds) In-situ spectroscopic studies of adsorption at the electrode and electrocatalysis. Elsevier, Amsterdam, pp 1–32
36. Leger J-M, Hahn F (2007) Contribution of in situ infrared reflectance spectroscopy in the study
of nanostructured fuel cell electrodes. In: Sun S-G, Christensen PA, Wieckowski A (eds) In-situ
spectroscopic studies of adsorption at the electrode and electrocatalysis. Elsevier, Amsterdam, pp
63–98
37. Korzeniewski C (2007) Recent advances in in situ infrared spectroscopy and applications in singlecrystal electrochemistry and electrocatalysis. In: Sun S-G, Christensen PA, Wieckowski A (eds) Insitu spectroscopic studies of adsorption at the electrode and electrocatalysis. Elsevier, Amsterdam,
pp 179–208
38. Osawa M (2009) In-situ surface-enhanced infrared spectroscopy of the electrode/solution interface.
In: Alkire RC, Kolb DM, Lipkowski J, Ross PN (eds) Advances in electrochemical science and
engineering. Diffraction and spectroscopic methods in electroelectrochemistry, vol 9. Wiley, New
York, pp 269–314
39. Li M, Marinkovic NS (2013) In situ infrared spectroelectrochemistry: principles and applications.
In: Cozzolino D (ed) Infrared spectroscopy: theory, developments and applications. Nova Science
Publishers, Hauppauge, pp 307–332
40. Zamlynny V, Lipkowski J (2009) Quantitative SNIFTIRS and PM IRRAS of organic molecules at
electrode surfaces. In: Alkire RC, Kolb DM, Lipkowski J, Ross PN (eds) Advances in electrochemical science and engineering. Diffraction and spectroscopic methods in electroelectrochemistry, vol
9. Wiley, New York, pp 315–376
41. Greenler RG (1966) Infrared study of adsorbed molecules on metal surfaces by reflection techniques. J Chem Phys 44:310–315
42. Greenler RG (1969) Reflection method for obtaining the infrared spectrum of a thin layer on a
metal surface. J Chem Phys 50:1963–1968
43. Greenler RG (1975) Design of a reflection–absorption experiment for studying the IR spectrum of
molecules adsorbed on a metal surface. J Vac Sci Technol 12:1410–1417
Reprinted from the journal
36
