Acknowledgements This work was partially supported by National Centre for Research and
Development decision No. LIDER/204/L-6/14/NCBR/2015 and by the National Science
Foundation project 2013/09/B/ST8/00171.
References
1. Somorjai GA, Li Y (2010) Introduction to surface chemistry and catalysis. Wiley
2. Haw JF (2002) In-situ spectroscopy in heterogeneous catalysis. Wiley-VCH
3. Daydov A (2003) Molecular spectroscopy of oxide catalyst surfaces. Wiley
4. Weckhuysen BM (2002) Snapshots of a working catalyst: possibilities and limitations of
in situ spectroscopy in the field of heterogeneous catalysis. Chem Commun 2:97–110
5. Banares MA (2005) Operando methodology: combination of in situ spectroscopy and
simultaneous activity measurements under catalytic reaction conditions. Catal Today
100:71–77
6. Weckhuysen BM (2004) In-situ spectroscopy of catalysts. In: Weckhuysen BM (ed) In-situ
spectroscopy of catalysts. American Scientific Publishers, Stevenson Ranch, CA, pp 1–12
7. Ryczkowski J (2001) IR spectroscopy in catalysis. Catal Today 68:263–381
8. Niemantsverdriet JW (2007) Spectroscopy in catalysis. Wiley-VCH Verlag GmbH & Co,
KGaA, Weinheim
9. Frenken J, Groot I (eds) (2017) Operando research in heterogeneous catalysis. Springer
Nature, Cham, Switzerland
10. Tarach K, Góra-Marek K, Tekla J, Brylewska K, Datka J, Mlekodaj K, Makowski W,
Igualada López MC, Martínez Triguero J, Rey F (2014) Catalytic cracking performance of
alkaline-treated zeolite Beta in the terms of acid sites properties and their accessibility.
J Catal 312:46–57
11. Corma A (1995) Inorganic solid acids and their use in acid-catalyzed hydrocarbon reactions.
Chem Rev 95:559–614
12. Lee AF, Wilson K (2015) Recent developments in heterogeneous catalysis for the
sustainable production of biodiesel. Catal Today 242:3–18
13. Knozinger H (1993) Infrared spectroscopy as a probe of surface acidity. In: Joyner RW, van
Santen RA (eds) Elementary reaction steps in heterogeneous catalysis. Springer
Science + Business Media B.V., pp 267–285
14. Hadjiivanov KI, Vayssilov GN (2002) Characterisation of oxide surfaces and zeolites by
carbon monoxide as an IR probe molecule. Adv Catal 47:307–511
15. Taylor HS (1925) A theory of the catalytic surface. Proc R Soc A 108:105–111
16. Barzetti T, Selli E, Moscotti D, Forni L (1996) Pyridine and ammonia as probes for FTIR
analysis of solid acid catalysts. J Chem Soc, Faraday Trans 92:1401–1407
17. Lercher JA, Gründling C, Eder-Mirth G (1996) Infrared studies of the surface acidity of
oxides and zeolites using adsorbed probe molecules. Catal Today 27:353–376
18. Halasz I (2010) Silica and silicates in modern catalysis. Transworld Research Network
19. Boroń P, Chmielarz L, Gil B, Marszałek B, Dzwigaj S (2016) Experimental evidence of
NO SCR mechanism in the presence of the BEA zeolite with framework and
extra-framework cobalt species. Appl Catal B Environ 198:457–470
20. Barthomeuf D (1996) Basic zeolites: characterization and uses in adsorption and catalysis.
Catal Rev Sci Eng 38:521–612
21. Chlebda D, Stachurska P, Jędrzejczyk R, Kuterasiński Ł, Dziedzicka A, Górecka S,
Chmielarz L, Łojewska J, Sitarz M, Jodłowski PJ (2018) DeNO x abatement over sonically
prepared iron-substituted Y, USY and MFI zeolite catalysts in lean exhaust gas conditions.
Nanomaterials 8:21
354
P. Jodłowski and J. Łojewska
Development decision No. LIDER/204/L-6/14/NCBR/2015 and by the National Science
Foundation project 2013/09/B/ST8/00171.
References
1. Somorjai GA, Li Y (2010) Introduction to surface chemistry and catalysis. Wiley
2. Haw JF (2002) In-situ spectroscopy in heterogeneous catalysis. Wiley-VCH
3. Daydov A (2003) Molecular spectroscopy of oxide catalyst surfaces. Wiley
4. Weckhuysen BM (2002) Snapshots of a working catalyst: possibilities and limitations of
in situ spectroscopy in the field of heterogeneous catalysis. Chem Commun 2:97–110
5. Banares MA (2005) Operando methodology: combination of in situ spectroscopy and
simultaneous activity measurements under catalytic reaction conditions. Catal Today
100:71–77
6. Weckhuysen BM (2004) In-situ spectroscopy of catalysts. In: Weckhuysen BM (ed) In-situ
spectroscopy of catalysts. American Scientific Publishers, Stevenson Ranch, CA, pp 1–12
7. Ryczkowski J (2001) IR spectroscopy in catalysis. Catal Today 68:263–381
8. Niemantsverdriet JW (2007) Spectroscopy in catalysis. Wiley-VCH Verlag GmbH & Co,
KGaA, Weinheim
9. Frenken J, Groot I (eds) (2017) Operando research in heterogeneous catalysis. Springer
Nature, Cham, Switzerland
10. Tarach K, Góra-Marek K, Tekla J, Brylewska K, Datka J, Mlekodaj K, Makowski W,
Igualada López MC, Martínez Triguero J, Rey F (2014) Catalytic cracking performance of
alkaline-treated zeolite Beta in the terms of acid sites properties and their accessibility.
J Catal 312:46–57
11. Corma A (1995) Inorganic solid acids and their use in acid-catalyzed hydrocarbon reactions.
Chem Rev 95:559–614
12. Lee AF, Wilson K (2015) Recent developments in heterogeneous catalysis for the
sustainable production of biodiesel. Catal Today 242:3–18
13. Knozinger H (1993) Infrared spectroscopy as a probe of surface acidity. In: Joyner RW, van
Santen RA (eds) Elementary reaction steps in heterogeneous catalysis. Springer
Science + Business Media B.V., pp 267–285
14. Hadjiivanov KI, Vayssilov GN (2002) Characterisation of oxide surfaces and zeolites by
carbon monoxide as an IR probe molecule. Adv Catal 47:307–511
15. Taylor HS (1925) A theory of the catalytic surface. Proc R Soc A 108:105–111
16. Barzetti T, Selli E, Moscotti D, Forni L (1996) Pyridine and ammonia as probes for FTIR
analysis of solid acid catalysts. J Chem Soc, Faraday Trans 92:1401–1407
17. Lercher JA, Gründling C, Eder-Mirth G (1996) Infrared studies of the surface acidity of
oxides and zeolites using adsorbed probe molecules. Catal Today 27:353–376
18. Halasz I (2010) Silica and silicates in modern catalysis. Transworld Research Network
19. Boroń P, Chmielarz L, Gil B, Marszałek B, Dzwigaj S (2016) Experimental evidence of
NO SCR mechanism in the presence of the BEA zeolite with framework and
extra-framework cobalt species. Appl Catal B Environ 198:457–470
20. Barthomeuf D (1996) Basic zeolites: characterization and uses in adsorption and catalysis.
Catal Rev Sci Eng 38:521–612
21. Chlebda D, Stachurska P, Jędrzejczyk R, Kuterasiński Ł, Dziedzicka A, Górecka S,
Chmielarz L, Łojewska J, Sitarz M, Jodłowski PJ (2018) DeNO x abatement over sonically
prepared iron-substituted Y, USY and MFI zeolite catalysts in lean exhaust gas conditions.
Nanomaterials 8:21
354
P. Jodłowski and J. Łojewska
