42
O. Farinre et al.
2. Camacho-López, M.A., Galeana-Camacho, J.R., Esparza-García, A., et al.: Characterization
of nanostructured SnO2 films deposited by reactive DC-magnetron sputtering. Superf y Vacio
26, 95–99 (2013)
3. Liu, H., Zhang, L., Li, K.H.H., Tan, O.K.: Microhotplates for Metal oxide semiconductor
gas sensor applications-towards the CMOS-MEMS monolithic approach. Micromachines 9,
(2018). https://doi.org/10.3390/mi9110557
4. Korotcenkov, G., Brinzari, V., Ham, M.H.: Materials acceptable for gas sensor design: Advantages and limitations. In: Key Engineering Materials, Vol. 780, pp. 80–89 (2018) Trans Tech
Publications Ltd
5. Lan, T., Tang, X., Fultz, B.: Phonon anharmonicity of rutile TiO 2 studied by Raman spectrometry and molecular dynamics simulations. Phys. Rev. B – Condens. Matter. Mater. Phys.
85, 1–11 (2012). https://doi.org/10.1103/PhysRevB.85.094305
6. Lan, T., Li, C.W., Fultz, B.: Phonon anharmonicity of rutile SnO 2 studied by Raman spectrometry and first principles calculations of the kinematics of phonon-phonon interactions.
Phys. Rev. B 86(13), 134302 (2012)
7. Tian, W., Liu, X., Wenbo, Yu.: Research progress of gas sensor based on graphene and its
derivatives: A review. Appl. Sci. 8(7), 1118 (2018)
8. Raval, B., Banerjee, I.: Functionalized graphene nanocomposite in gas sensing. In: Functionalized Graphene Nanocomposites and their Derivatives, pp. 295–322. Elsevier (2019)
9. Sarf, F.: Metal oxide gas sensors by nanostructures. In: Gas Sensors. IntechOpen (2019)
10. Cataldi, P., Athanassiou, A., Bayer, I.S.: Graphene nanoplatelets-based advanced materials
and recent progress in sustainable applications. Appl. Sci. 8(9), 1438 (2018)
11. Jang, B.Z., Zhamu, A.: Processing of nanographene platelets (ngps) and ngp nanocomposites:
a review. J. Mater. Sci. 43(15), 5092–5101 (2008)
12. Lindsay, L., Broido, D.A.: Optimized tersoff and Brenner empirical potential parameters for
lattice dynamics and phonon thermal transport in carbon nanotubes and graphene. Phys. Rev.
B 81(20), 205441 (2010)
13. Sun, X., Chen, Q., Wang, C., Li, Y., Wang, J.: Melting and isothermal bulk modulus of
the rocksalt phase of ZnO with molecular dynamics simulation. Phys. B: Condens. Matter
355(1–4), 126–133 (2005)
14. Batzill, M., Diebold, U.: The surface and materials science of tin oxide. Prog. Surf. Sci.
79(2–4), 47–154 (2005)
15. Henry, J., Mohanraj, K., Sivakumar, G., Umamaheswari, S.: Electrochemical and fluorescence
properties of SnO2 thin films and its antibacterial activity. Spectrochim. Acta Part A Mol.
Biomol. Spectrosc. 143, 172–178 (2015)
16. Armstrong, P., Knieke, C., Mackovic, M., Frank, G., Hartmaier, A., Göken, M., Peukert, W.:
Microstructural evolution during deformation of tin dioxide nanoparticles in a comminution
process. Acta Mater. 57(10), 3060–3071 (2009)
17. Dai, J., Peng, C., Wang, F., Zhang, G., Huang, Z.: Effects of functionalized graphene
nanoplatelets on the morphology and properties of phenolic resins. J. Nanomater. 2016, 1–7
(2016). https://doi.org/10.1155/2016/3485167. Article ID 3485167
18. D Sfyris, GI Sfyris, and C Galiotis. Stress intrepretation of graphene e-2 g and a-1 g vibrational
modes: theoretical analysis. arXiv preprint arXiv:1706.04465 (2017)
19. Wu, J.B., Lin, M.L., Cong, X., Liu, H.N., Tan, P.H.: Raman spectroscopy of graphene-based
materials and its applications in related devices. Chem. Soc. Rev. 47(5), 1822–1873 (2018)
20. Casimir, D., Alghamdi, H., Ahmed, I.Y., Garcia-Sanchez, R., Misra, P.: Raman spectroscopy
of graphene, graphite and graphene nanoplatelets. In: 2D Materials. IntechOpen (2019)
21. Rius, G., Godignon, P.: Epitaxial Graphene on Silicon Carbide: Modeling, Characterization,
and Applications. CRC Press, New York (2018)
O. Farinre et al.
2. Camacho-López, M.A., Galeana-Camacho, J.R., Esparza-García, A., et al.: Characterization
of nanostructured SnO2 films deposited by reactive DC-magnetron sputtering. Superf y Vacio
26, 95–99 (2013)
3. Liu, H., Zhang, L., Li, K.H.H., Tan, O.K.: Microhotplates for Metal oxide semiconductor
gas sensor applications-towards the CMOS-MEMS monolithic approach. Micromachines 9,
(2018). https://doi.org/10.3390/mi9110557
4. Korotcenkov, G., Brinzari, V., Ham, M.H.: Materials acceptable for gas sensor design: Advantages and limitations. In: Key Engineering Materials, Vol. 780, pp. 80–89 (2018) Trans Tech
Publications Ltd
5. Lan, T., Tang, X., Fultz, B.: Phonon anharmonicity of rutile TiO 2 studied by Raman spectrometry and molecular dynamics simulations. Phys. Rev. B – Condens. Matter. Mater. Phys.
85, 1–11 (2012). https://doi.org/10.1103/PhysRevB.85.094305
6. Lan, T., Li, C.W., Fultz, B.: Phonon anharmonicity of rutile SnO 2 studied by Raman spectrometry and first principles calculations of the kinematics of phonon-phonon interactions.
Phys. Rev. B 86(13), 134302 (2012)
7. Tian, W., Liu, X., Wenbo, Yu.: Research progress of gas sensor based on graphene and its
derivatives: A review. Appl. Sci. 8(7), 1118 (2018)
8. Raval, B., Banerjee, I.: Functionalized graphene nanocomposite in gas sensing. In: Functionalized Graphene Nanocomposites and their Derivatives, pp. 295–322. Elsevier (2019)
9. Sarf, F.: Metal oxide gas sensors by nanostructures. In: Gas Sensors. IntechOpen (2019)
10. Cataldi, P., Athanassiou, A., Bayer, I.S.: Graphene nanoplatelets-based advanced materials
and recent progress in sustainable applications. Appl. Sci. 8(9), 1438 (2018)
11. Jang, B.Z., Zhamu, A.: Processing of nanographene platelets (ngps) and ngp nanocomposites:
a review. J. Mater. Sci. 43(15), 5092–5101 (2008)
12. Lindsay, L., Broido, D.A.: Optimized tersoff and Brenner empirical potential parameters for
lattice dynamics and phonon thermal transport in carbon nanotubes and graphene. Phys. Rev.
B 81(20), 205441 (2010)
13. Sun, X., Chen, Q., Wang, C., Li, Y., Wang, J.: Melting and isothermal bulk modulus of
the rocksalt phase of ZnO with molecular dynamics simulation. Phys. B: Condens. Matter
355(1–4), 126–133 (2005)
14. Batzill, M., Diebold, U.: The surface and materials science of tin oxide. Prog. Surf. Sci.
79(2–4), 47–154 (2005)
15. Henry, J., Mohanraj, K., Sivakumar, G., Umamaheswari, S.: Electrochemical and fluorescence
properties of SnO2 thin films and its antibacterial activity. Spectrochim. Acta Part A Mol.
Biomol. Spectrosc. 143, 172–178 (2015)
16. Armstrong, P., Knieke, C., Mackovic, M., Frank, G., Hartmaier, A., Göken, M., Peukert, W.:
Microstructural evolution during deformation of tin dioxide nanoparticles in a comminution
process. Acta Mater. 57(10), 3060–3071 (2009)
17. Dai, J., Peng, C., Wang, F., Zhang, G., Huang, Z.: Effects of functionalized graphene
nanoplatelets on the morphology and properties of phenolic resins. J. Nanomater. 2016, 1–7
(2016). https://doi.org/10.1155/2016/3485167. Article ID 3485167
18. D Sfyris, GI Sfyris, and C Galiotis. Stress intrepretation of graphene e-2 g and a-1 g vibrational
modes: theoretical analysis. arXiv preprint arXiv:1706.04465 (2017)
19. Wu, J.B., Lin, M.L., Cong, X., Liu, H.N., Tan, P.H.: Raman spectroscopy of graphene-based
materials and its applications in related devices. Chem. Soc. Rev. 47(5), 1822–1873 (2018)
20. Casimir, D., Alghamdi, H., Ahmed, I.Y., Garcia-Sanchez, R., Misra, P.: Raman spectroscopy
of graphene, graphite and graphene nanoplatelets. In: 2D Materials. IntechOpen (2019)
21. Rius, G., Godignon, P.: Epitaxial Graphene on Silicon Carbide: Modeling, Characterization,
and Applications. CRC Press, New York (2018)
