全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...
Graphene  2019 

Modeling Enhanced Adsorption of Explosive Molecules on a Hydroxylated Graphene Pore

DOI: 10.4236/graphene.2019.81001, PP. 1-18

Keywords: Molecular Mechanics, Explosives, Molecule-Surface Binding Energy, Hydroxylated Graphene Pore, Graphene Bilayer, Enhanced Adsorption for Explosives

Full-Text   Cite this paper   Add to My Lib

Abstract:

The possibility of a graphene bilayer nanosensor for the detection of explosive molecules was modeled using computational chemistry. A pore was designed on a graphene bilayer structure with three strategically placed perimeter hydroxyl (OH) groups built around the edge of an indented, two-dimensional hexagonal pore. This hydroxylated pore and models of various explosive molecules were optimized using MM2 molecular mechanics parameters. Values were calculated for the molecule-surface interaction energy (binding energy), E, for 22 explosive molecules on a flat graphene bilayer and on the specially designed hydroxylated pore within the bilayer. The molecule-surface binding energy for trinitrotoluene (TNT) increased from 17.9 kcal/mol on the flat graphene bilayer to 42.3 kcal/mol on the hydroxylated pore. Due to the common functionality of nitro groups that exist on many explosive molecules, the other explosive molecules studied gave similar enhancements based on the specific hydrogen bonding interactions formed within the pore. Each of the 22 explosive adsorbate molecules showed increased molecule-surface interaction on the bilayer hydroxylated pore as compared to the flat bilayer. For the 22 molecules, the average E for the flat graphite surface was 15.8 kcal/mol and for the hydroxylated pore E was 33.8 kcal/mol. An enhancement of adsorption should make a detection device more sensitive. Nanosensors based on a modified graphene surface may be useful for detecting extremely low concentrations of explosive molecules or explosive signature molecules.

References

[1]  Zhang, J., Song, L., Zhang, Z.P., Chen, N. and Qu, L.T. (2014) Environmentally Responsive Graphene Systems. Small, 10, 2151-2164.
https://doi.org/10.1002/smll.201303080
[2]  Kwon, O.S., Park, S.J., Jang, J. and Bae, J. (2016) Novel Graphene Sensors for Chemical and Biological Applications. In: Aliofkhazraei, M., Ed., Graphene Science Handbook: Fabrication Methods, CRC Press, Boca Raton, FL, 269-286.
[3]  Yavari, F. and Koratkar, N. (2012) Graphene-Based Chemical Sensors. Journal of Physical Chemistry Letters, 3, 1746-1753.
https://doi.org/10.1021/jz300358t
[4]  Wisitsoraat, A. and Tuantranont, A. (2013) Graphene-Based Chemical and Biosensors. In: Tuantranont, A., Ed., Applications of Nanomaterials in Sensors and Diagnostics. Springer Series on Chemical Sensors and Biosensors (Methods and Applications), Springer, Berlin, Heidelberg, 103-141.
[5]  Chung, M.G., Kim, D.H., Lee, H.M., Kim, T., Choi, J.H., Seo, D.K., Yoo, J.-B., Hong, S.-H., Kang, T.J. and Kim, Y.H. (2012) Highly Sensitive NO2 Gas Sensor Based on Ozone Treated Graphene. Sensors and Actuators, B: Chemical, 166-167, 172-176.
[6]  Moore, D.S. (2004) Instrumentation for Trace Detection of High Explosives. Review of Scientific Instruments, 75, 2499-2512.
https://doi.org/10.1063/1.1771493
[7]  Moore, D.S. (2007) Recent Advances in Trace Explosives Detection Instrumentation. Sensing and Imaging: An International Journal, 8, 9-38.
https://doi.org/10.1007/s11220-007-0029-8
[8]  Yi, D., Larry Senesac, L.R. and Thundat, T.G. (2008) Speciation of Energetic Materials on a Microcantilever Using Surface Reduction. Scanning, 30, 208-212.
https://doi.org/10.1002/sca.20096
[9]  Zhang, J. and Fahrenthold, E.P. (2019) Graphene-Based Sensing of Gas-Phase Explosives. ACS Applied Nano Materials, 2, 1445-1456.
[10]  Akhavan, J. (2011) The Chemistry of Explosives. 3rd Edition, RSC Publishing, Cambridge.
[11]  Klapotke, T.M. (2011) Chemistry of High-Energy Materials. De Gruyter Publishers, Berlin, Germany.
https://doi.org/10.1515/9783110227840
[12]  Rahim, I., Shah, M., Iqbal, M. and Khan, A. (2018) Synthesis, Structural, Optical, Morphological and Multi Sensing Properties of Graphene Based Thin Film Devices. Materials Research Express, 5, Article ID: 096403.
https://doi.org/10.1088/2053-1591/aac98b
[13]  Ye, H., Nallon, E.C., Schnee, V.P., Shi, C., Jiang, K., Xu, J., Feng, S., Wang, H. and Li, Q. (2018) Enhance the Discrimination Precision of Graphene Gas Sensors with a Hidden Markov Model. Analytical Chemistry, 90, 13790-13795.
https://doi.org/10.1021/acs.analchem.8b04386
[14]  Lee, J., Lee, C.-J., Kang, J., Park, H., Kim, J., Choi, M. and Park, H. (2019) Multifunctional Graphene Sensor for Detection of Environment Signals Using a Decoupling Technique. Solid-State Electronics, 151, 40-46.
https://doi.org/10.1016/j.sse.2018.10.014
[15]  Nallon, E.C., Schnee, V.P., Bright, C., Polcha, M.P. and Li, Q.L. (2016) Chemical Discrimination with an Unmodified Graphene Chemical Sensor. ACS Sensors, 1, 26-31.
https://doi.org/10.1021/acssensors.5b00029
[16]  Melios, C., Panchal, V., Edmonds, K., Lartsev, A., Yakimova, R. and Kazakova, O. (2018) Detection of Ultralow Concentration NO2 in Complex Environment Using Epitaxial Graphene Sensors. ACS Sensors, 3, 1666-1674.
https://doi.org/10.1021/acssensors.8b00364
[17]  Hannon, A., Lu, Y., Li, J. and Meyyappan, M. (2016) A Sensor Array for The Detection and Discrimination of Methane and Other Environmental Pollutant Gases. Sensors, 16, 1163.
https://doi.org/10.3390/s16081163
[18]  Rattanabut, C., Wongwiriyapan, W., Muangrat, W., Bunjongpru, W., Phonyiem, M. and Song, Y.J. (2018) Graphene and Poly(Methyl Methacrylate) Composite Laminates on Flexible Substrates for Volatile Organic Compound Detection. Japanese Journal of Applied Physics, 57, 04FP10.
https://doi.org/10.7567/JJAP.57.04FP10
[19]  Park, S., Park, M., Kim, S., Yi, S.-G., Kim, M., Son, J., Cha, J., Hong, J. and Yoo, K.-H. (2017) NO2 Gas Sensor Based on Hydrogenated Graphene. Applied Physics Letters, 111, Article ID: 213102.
https://doi.org/10.1063/1.4999263
[20]  Leenaerts, O., Partoens, B. and Peeters, F.M. (2007) Adsorption of H2O, NH3, CO, NO2, and NO on Graphene: A First-Principles Study. Physical Review B, 77, 125416.
https://doi.org/10.1103/PhysRevB.77.125416
[21]  Peng, Y. and Li, J. (2013) Ammonia Adsorption on Graphene and Graphene Oxide: A First-Principles Study. Frontiers of Environmental Science & Engineering, 7, 403-411.
https://doi.org/10.1007/s11783-013-0491-6
[22]  Rouhani, M. (2019) DFT Study on Adsorbing and Detecting Possibility of Cyanogen Chloride by Pristine, B, Al, Ga, Si And Ge Doped Graphene. Journal of Molecular Structure, 1181, 518-535.
https://doi.org/10.1016/j.molstruc.2019.01.006
[23]  Zheng, Z. and Wang, H. (2019) Different Elements Doped Graphene Sensor for CO2 Greenhouse Gases Detection: The DFT Study. Chemical Physics Letters, 721, 33-37.
https://doi.org/10.1016/j.cplett.2019.02.024
[24]  Son, J.H. and Rybolt, T.R. (2013) Force Field Based MM2 Molecule-Surface Binding Energies for Graphite and Graphene. Graphene, 2, 18-34.
https://doi.org/10.4236/graphene.2013.21004
[25]  Agrawal, J.P. and Hodgson, R. (2007) Organic Chemistry of Explosion. Wiley, New York.
https://onlinelibrary.wiley.com/doi/book/10.1002/9780470059364
https://doi.org/10.1002/9780470059364
[26]  Yinon, J. (2002) Field Detection and Monitoring of Explosives. Trends in Analytical Chemistry, 21, 292-301.
https://doi.org/10.1016/S0165-9936(02)00408-9
[27]  Rybolt, T.R., Wells, C.E., Sisson, C.R., Black, C.B. and Ziegler, K.A. (2007) Evaluation of Molecular Mechanics Calculated Binding Energies for Isolated and Monolayer Organic Molecules on Graphite. Journal of Colloid and Interface Science, 314, 434-445.
https://doi.org/10.1016/j.jcis.2007.05.083
[28]  Rybolt, T.R. and Black, C.B. (2017) Polycyclic Aromatic Hydrocarbon Molecule-Surface Binding Energies in Site Specific Graphene Bilayer Nanopores: A Puzzle-ene Force Field Calculation. Graphene, 6, 72-84.
https://doi.org/10.4236/graphene.2017.63006
[29]  Frye, C.W. and Rybolt, T.R. (2018) Nanohashtag Structures Based on Carbon Nanotubes and Molecular Linkers. Surface Science, 669, 34-44.
https://doi.org/10.1016/j.susc.2017.11.005
[30]  Rybolt, T.R., Logan, D.L., Milburn, M.W., Thomas, H.E. and Waters, A.B. (1999) Correlations of Henry’s Law Gas-Solid Virial Coefficients and Chromatographic Retention Times for Hydrocarbons and Halocarbons Adsorbed on Carbopack C Carbon. Journal of Colloid and Interface Science, 220, 148-156.
https://doi.org/10.1006/jcis.1999.6522
[31]  Yinon, J. and Zitrin, S. (1993) Modern Methods and Applications in Analysis of Explosives. John Wiley & Sons, Chichester, England.
[32]  Xantheas, S.S. (2000) Cooperativity and Hydrogen Bonding Network in Water Clusters. Chemical Physics, 258, 225-231.
https://doi.org/10.1016/S0301-0104(00)00189-0
[33]  Jeffery, G.A. (1997) An Introduction to Hydrogen Bonding. Oxford University Press, Oxford.

Full-Text

comments powered by Disqus

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133

WeChat 1538708413