Werner, M.; Ambelas Skjøth, C.; Kryza, M.; Dore, A.J. Understanding emissions of ammonia from buildings and the application of fertilizers: An example from Poland. Biogeosciences 2015, 12, 3623–3638, doi:10.5194/bg-12-3623-2015.
Risby, T.H.; Solga, S.F. Current status of clinical breath analysis. Appl. Phys. B 2006, 85, 421–426, doi:10.1007/s00340-006-2280-4.
Ishpal; Kaur, A. Spectroscopic investigations of ammonia gas sensing mechanism in polypyrrole nanotubes/nanorods. J. Appl. Phys. 2013, 113, 094504, doi:10.1063/1.4793994.
Bevc, S.; Mohorko, E.; Kolar, M.; Brglez, P.; Holobar, A.; Kniepeiss, D.; Podbregar, M.; Piko, N.; Hojs, N.; Knehtl, M.; et al. Measurement of breath ammonia for detection of patients with chronic kidney disease. Clin. Nephrol. 2017, 88, 14–17, doi:10.5414/CNP88FX04.
Turner, C.; Španěl, P.; Smith, D. A longitudinal study of ammonia, acetone and propanol in the exhaled breath of 30 subjects using selected ion flow tube mass spectrometry, SIFT-MS. Physiol. Meas. 2006, 27, 321–337, doi:10.1088/0967-3334/27/4/001.
Davies, S.; Spanel, P.; Smith, D. Quantitative analysis of ammonia on the breath of patients in end-stage renal failure. Kidney Int. 1997, 52, 223–228, doi:10.1038/ki.1997.324.
Timmer, B.; Olthuis, W.; Berg, A. van den Ammonia sensors and their applications—A review. Sens. Actuators B Chem. 2005, 107, 666–677, doi:10.1016/j.snb.2004.11.054.
Kwak, D.; Lei, Y.; Maric, R. Ammonia gas sensors: A comprehensive review. Talanta 2019, 204, 713–730, doi:10.1016/j.talanta.2019.06.034.
Aarya, S.; Kumar, Y.; Chahota, R.K. Recent Advances in Materials, Parameters, Performance and Technology in Ammonia Sensors: A Review. J. Inorg. Organomet. Polym. Mater. 2020, 30, 269–290, doi:10.1007/s10904-019-01208-x.
D’Arienzo, M.; Armelao, L.; Mari, C.M.; Polizzi, S.; Ruffo, R.; Scotti, R.; Morazzoni, F. Macroporous WO3 Thin Films Active in NH3 Sensing: Role of the Hosted Cr Isolated Centers and Pt Nanoclusters. J. Am. Chem. Soc. 2011, 133, 5296–5304, doi:10.1021/ja109511a.
Wang, L.; Lou, Z.; Fei, T.; Zhang, T. Templating synthesis of ZnO hollow nanospheres loaded with Au nanoparticles and their enhanced gas sensing properties. J. Mater. Chem. 2012, 22, 4767, doi:10.1039/c2jm15342d.
Elouali, S.; Bloor, L.G.; Binions, R.; Parkin, I.P.; Carmalt, C.J.; Darr, J.A. Gas Sensing with Nano-Indium Oxides (In2O3) Prepared via Continuous Hydrothermal Flow Synthesis. Langmuir 2012, 28, 1879–1885, doi:10.1021/la203565h.
Kwon, O.S.; Hong, J.Y.; Park, S.J.; Jang, Y.; Jang, J. Resistive Gas Sensors Based on Precisely Size-Controlled Polypyrrole Nanoparticles: Effects of Particle Size and Deposition Method. J. Phys. Chem. C 2010, 114, 18874–18879, doi:10.1021/jp1083086.
Joshi, A.; Gangal, S.A.; Gupta, S.K. Ammonia sensing properties of polypyrrole thin films at room temperature. Sens. Actuators B Chem. 2011, 156, 938–942, doi:10.1016/j.snb.2011.03.009.
Yang, P.; Lv, D.; Shen, W.; Wu, T.; Yang, Y.; Zhao, Y.; Tan, R.; Song, W. Porous flexible polyaniline/polyvinylidene fluoride composite film for trace-level NH3 detection at room temperature. Mater. Lett. 2020, 271, 127798, doi:10.1016/j.matlet.2020.127798.
Le Maout, P.; Wojkiewicz, J.-L.; Redon, N.; Lahuec, C.; Seguin, F.; Dupont, L.; Mikhaylov, S.; Noskov, Y.; Ogurtsov, N.; Pud, A. Polyaniline nanocomposites based sensor array for breath ammonia analysis. Portable e-nose approach to non-invasive diagnosis of chronic kidney disease. Sens. Actuators B Chem. 2018, 274, 616–626, doi:10.1016/j.snb.2018.07.178.
Piraux, L.; Antohe, V.-A.; Ferain, E.; Lahem, D. Self-supported three-dimensionally interconnected polypyrrole nanotubes and nanowires for highly sensitive chemiresistive gas sensing. RSC Adv. 2016, 6, 21808–21813, doi:10.1039/C6RA03439J.
Joulazadeh, M.; Navarchian, A.H. Ammonia detection of one-dimensional nano-structured polypyrrole/metal oxide nanocomposites sensors. Synth. Met. 2015, 210, 404–411, doi:10.1016/j.synthmet.2015.10.026.
Zhang, Y.; Zhang, J.; Jiang, Y.; Duan, Z.; Liu, B.; Zhao, Q.; Wang, S.; Yuan, Z.; Tai, H. Ultrasensitive flexible NH3 gas sensor based on polyaniline/SrGe4O9 nanocomposite with ppt-level detection ability at room temperature. Sens. Actuators B Chem. 2020, 319, 128293, doi:10.1016/j.snb.2020.128293.
Hwang, B.-Y.; Du, W.; Lee, H.-J.; Kang, S.; Takada, M.; Kim, J.-Y. Stretchable and High-performance Sensor films Based on Nanocomposite of Polypyrrole/SWCNT/Silver Nanowire. Nanomaterials 2020, 10, 696, doi:10.3390/nano10040696.
Bogue, R. Graphene Sensors: A Review of Recent Developments. Sens. Rev. 2014, 34, 233–238, doi:10.1108/SR-03-2014-631.
Vikrant, K.; Kumar, V.; Kim, K.-H. Graphene Materials as a Superior Platform for Advanced Sensing Strategies against Gaseous Ammonia. J. Mater. Chem. A 2018, 6, 22391–22410, doi:10.1039/C8TA07669C.
Schedin, F.; Geim, A.K.; Morozov, S.V.; Hill, E.W.; Blake, P.; Katsnelson, M.I.; Novoselov, K.S. Detection of individual gas molecules adsorbed on graphene. Nat. Mater. 2007, 6, 652–655, doi:10.1038/nmat1967.
Chen, C.W.; Hung, S.C.; Yang, M.D.; Yeh, C.W.; Wu, C.H.; Chi, G.C.; Ren, F.; Pearton, S.J. Oxygen sensors made by monolayer graphene under room temperature. Appl. Phys. Lett. 2011, 99, 243502, doi:10.1063/1.3668105.
Hong, J.; Lee, S.; Seo, J.; Pyo, S.; Kim, J.; Lee, T. A Highly Sensitive Hydrogen Sensor with Gas Selectivity Using a PMMA Membrane-Coated Pd Nanoparticle/Single-Layer Graphene Hybrid. ACS Appl. Mater. Interfaces 2015, 7, 3554–3561, doi:10.1021/am5073645.
Pandey, P.A.; Wilson, N.R.; Covington, J.A. Pd-doped reduced graphene oxide sensing films for H2 detection. Sens. Actuators B Chem. 2013, 183, 478–487, doi:10.1016/j.snb.2013.03.089.
Huang, L.; Zhang, Z.; Li, Z.; Chen, B.; Ma, X.; Dong, L.; Peng, L.-M. Multifunctional Graphene Sensors for Magnetic and Hydrogen Detection. Acs Appl. Mater. Interfaces 2015, 7, 9581–9588, doi:10.1021/acsami.5b01070.
Yavari, F.; Castillo, E.; Gullapalli, H.; Ajayan, P.M.; Koratkar, N. High sensitivity detection of NO2 and NH3 in air using chemical vapor deposition grown graphene. Appl. Phys. Lett. 2012, 100, 203120, doi:10.1063/1.4720074.
Dan, Y.; Lu, Y.; Kybert, N.J.; Luo, Z.; Johnson, A.T.C. Intrinsic Response of Graphene Vapor Sensors. Nano Lett. 2009, 9, 1472– 1475, doi:10.1021/nl8033637.
Abergel, D.S.L.; Apalkov, V.; Berashevich, J.; Ziegler, K.; Chakraborty, T. Properties of graphene: A theoretical perspective. Adv. Phys. 2010, 59, 261–482, doi:10.1080/00018732.2010.487978.
Hill, E.W.; Vijayaragahvan, A.; Novoselov, K. Graphene Sensors. IEEE Sens. J. 2011, 11, 3161–3170, doi:10.1109/JSEN.2011.2167608.
Meunier, V.; Souza Filho, A.G.; Barros, E.B.; Dresselhaus, M.S. Physical properties of low-dimensional s p 2-based carbon nanostructures. Rev. Mod. Phys. 2016, 88, doi:10.1103/RevModPhys.88.025005.
Suk, J.W.; Lee, W.H.; Lee, J.; Chou, H.; Piner, R.D.; Hao, Y.; Akinwande, D.; Ruoff, R.S. Enhancement of the Electrical Properties of Graphene Grown by Chemical Vapor Deposition via Controlling the Effects of Polymer Residue. Nano Lett. 2013, 13, 1462–1467, doi:10.1021/nl304420b.
Donarelli, M.; Ottaviano, L. 2D Materials for Gas Sensing Applications: A Review on Graphene Oxide, MoS2, WS2 and Phosphorene. Sensors 2018, 18, 3638, doi:10.3390/s18113638.
Novoselov, K.S. Electric Field Effect in Atomically Thin Carbon Films. Science 2004, 306, 666–669, doi:10.1126/science.1102896.
Reckinger, N.; Casa, M.; Scheerder, J.E.; Keijers, W.; Paillet, M.; Huntzinger, J.-R.; Haye, E.; Felten, A.; Van de Vondel, J.; Sarno, M.; et al. Restoring self-limited growth of single-layer graphene on copper foil via backside coating. Nanoscale 2019, 11, 5094– 5101, doi:10.1039/C8NR09841G.
Yusop, M.Z.M.; Elias, M.S.; Dzarfan, M.H.; Aziz, M.; Ismail, A.F. Effects of copper, nickel, and its alloy as catalysts for graphene growth via chemical vapor deposition method: A review. Malays. J. Fundam. Appl. Sci. 2019, 15, 508–515.
Berger, C. Electronic Confinement and Coherence in Patterned Epitaxial Graphene. Science 2006, 312, 1191–1196, doi:10.1126/science.1125925.
Hummers, W.S. and Offeman, R.E. Preparation of Graphitic Oxide. J. Am. Chem. Soc. 1958, 80, 1339, doi:10.1021/ja01539a017.
Lotya, M.; Hernandez, Y.; King, P.J.; Smith, R.J.; Nicolosi, V.; Karlsson, L.S.; Blighe, F.M.; De, S.; Wang, Z.; McGovern, I.T.; et al. Liquid Phase Production of Graphene by Exfoliation of Graphite in Surfactant/Water Solutions. J. Am. Chem. Soc. 2009, 131, 3611–3620, doi:10.1021/ja807449u.
Alam, S.N.; Sharma, N.; Kumar, L. Synthesis of Graphene Oxide (GO) by Modified Hummers Method and Its Thermal Reduction to Obtain Reduced Graphene Oxide (rGO)*. Graphene 2017, 06, 1–18, doi:10.4236/graphene.2017.61001.
Hidayah, N.M.S.; Liu, W.-W.; Lai, C.-W.; Noriman, N.Z.; Khe, C.-S.; Hashim, U.; Lee, H.C. Comparison on Graphite, Graphene Oxide and Reduced Graphene Oxide: Synthesis and characterization; AIP Publishing: Penang, Malaysia, 2017; p. 150002. https://www.researchgate.net/publication/320446581
Gadgil, B.; Damlin, P.; Kvarnström, C. Graphene vs. reduced graphene oxide: A comparative study of graphene-based nanoplatforms on electrochromic switching kinetics. Carbon 2016, 96, 377–381, doi:10.1016/j.carbon.2015.09.065.
Mujahid, A.; Dickert, F. Surface Acoustic Wave (SAW) for Chemical Sensing Applications of Recognition Layers. Sensors 2017, 17, 2716, doi:10.3390/s17122716.
Sauerbrey, G. Verwendung von Schwingquarzen zur Wägung dünner Schichten und zur Mikrowägung. Z. Für Phys. 1959, 155, 206–222.
Afzal, A.; Iqbal, N.; Mujahid, A.; Schirhagl, R. Advanced Vapor Recognition Materials for Selective and Fast Responsive Surface Acoustic Wave Sensors: A Review. Anal. Chim. Acta 2013, 787, 36–49, doi:10.1016/j.aca.2013.05.005.
Tang, Q.B.; Guo, Y.J.; Tang, Y.L.; Long, G.D.; Wang, J.L.; Li, D.J.; Zu, X.T.; Ma, J.Y.; Wang, L.; Torun, H.; et al. Highly sensitive and selective Love mode surface acoustic wave ammonia sensor based on graphene oxides operated at room temperature. J. Mater. Sci. 2019, 54, 11925–11935, doi:10.1007/s10853-019-03764-6.
Leenaerts, O.; Partoens, B.; Peeters, F.M. Adsorption of H2O, NH3, CO, NO2, and NO on graphene: A first-principles study. Phys. Rev. B 2008, 77, doi:10.1103/PhysRevB.77.125416.
Kong, L.; Enders, A.; Rahman, T.S.; Dowben, P.A. Molecular adsorption on graphene. J. Phys. Condens. Matter 2014, 26, 443001, doi:10.1088/0953-8984/26/44/443001.
Polichetti, T.; Ricciardella, F.; Fedi, F.; Miglietta, M.L.; Miscioscia, R.; Massera, E.; De Vito, S.; Di Francia, G.; Nigro, M.A.; Faggio, G.; et al. Graphene-based Schottky Device Detecting NH3 at ppm level in Environmental Conditions. Procedia Eng. 2014, 87, 232–235, doi:10.1016/j.proeng.2014.11.629.
Biswas, M.R.U.D.; Oh, W.-C. Comparative study on gas sensing by a Schottky diode electrode prepared with graphene– semiconductor–polymer nanocomposites. RSC Adv. 2019, 9, 11484–11492, doi:10.1039/C9RA00007K.
Blake, P.; Hill, E.W.; Castro Neto, A.H.; Novoselov, K.S.; Jiang, D.; Yang, R.; Booth, T.J.; Geim, A.K. Making graphene visible. Appl. Phys. Lett. 2007, 91, 063124, doi:10.1063/1.2768624.
Luongo, G.; Di Bartolomeo, A.; Giubileo, F.; Chavarin, C.A.; Wenger, C. Electronic properties of graphene/p-silicon Schottky junction. J. Phys. D Appl. Phys. 2018, 51, 255305, doi:10.1088/1361-6463/aac562.
Pearce, R.; Iakimov, T.; Andersson, M.; Hultman, L.; Spetz, A.L.; Yakimova, R. Epitaxially grown graphene based gas sensors for ultra sensitive NO2 detection. Sens. Actuators B Chem. 2011, 155, 451–455, doi:10.1016/j.snb.2010.12.046.
Lemme, M.C.; Echtermeyer, T.; Baus, M.; Szafranek, B.N.; Schmidt, M.; Kurz, H. Towards Graphene Field Effect Transistors. ECS Trans. 2019, 11, 413–419, doi:10.1149/1.2778398.
Łuszczek, M. Modelling of Graphene Field-Effect Transistor for electronic sensing applications. Przegląd Elektrotechniczny 2015, 1, 172–174, doi:10.15199/48.2015.10.34.
Liu, Y.; Chang, J.; Lin, L. A flexible graphene FET gas sensor using polymer as gate dielectrics. In Proceedings of the 2014 IEEE 27th International Conference on Micro Electro Mechanical Systems (MEMS), San Francisco, CA, USA, 26–30 January 2014; pp. 230–233.
Lu, G.; Yu, K.; Ocola, L.E.; Chen, J. Ultrafast room temperature NH3 sensing with positively gated reduced graphene oxide field-effect transistors. Chem. Commun. 2011, 47, 7761, doi:10.1039/c1cc12658j.
Colinge, J.-P.; Colinge, C.A. Physics of Semiconductor Devices; Kluwer Academic Publishers: Boston, MA, USA, 2002; p. 210.
Fu, W.; Jiang, L.; van Geest, E.P.; Lima, L.M.C.; Schneider, G.F. Sensing at the Surface of Graphene Field-Effect Transistors. Adv. Mater. 2017, 29, 1603610, doi:10.1002/adma.201603610.
Gautam, M.; Jayatissa, A.H. Graphene based field effect transistor for the detection of ammonia. J. Appl. Phys. 2012, 112, 064304, doi:10.1063/1.4752272.
Zhang, Y.-H.; Chen, Y.-B.; Zhou, K.-G.; Liu, C.-H.; Zeng, J.; Zhang, H.-L.; Peng, Y. Improving gas sensing properties of graphene by introducing dopants and defects: A first-principles study. Nanotechnology 2009, 20, 185504, doi:10.1088/0957-4484/20/18/185504.
Yuan, W.; Shi, G. Graphene-based gas sensors. J. Mater. Chem. A 2013, 1, 10078, doi:10.1039/c3ta11774j.
Nair, R.R.; Blake, P.; Grigorenko, A.N.; Novoselov, K.S.; Booth, T.J.; Stauber, T.; Peres, N.M.R.; Geim, A.K. Fine Structure Constant Defines Visual Transparency of Graphene. Science 2008, 320, 1308–1308, doi:10.1126/science.1156965.
Liu, B.; Tang, C.; Chen, J.; Xie, N.; Tang, H.; Zhu, X.; Park, G. Multiband and Broadband Absorption Enhancement of Monolayer Graphene at Optical Frequencies from Multiple Magnetic Dipole Resonances in Metamaterials. Nanoscale Res. Lett. 2018, 13, doi:10.1186/s11671-018-2569-3.
Georgakilas, V.; Otyepka, M.; Bourlinos, A.B.; Chandra, V.; Kim, N.; Kemp, K.C.; Hobza, P.; Zboril, R.; Kim, K.S. Functionalization of Graphene: Covalent and Non-Covalent Approaches, Derivatives and Applications. Chem. Rev. 2012, 112, 6156–6214, doi:10.1021/cr3000412.
Cui, S.; Mao, S.; Wen, Z.; Chang, J.; Zhang, Y.; Chen, J. Controllable synthesis of silver nanoparticle-decorated reduced graphene oxide hybrids for ammonia detection. Analyst 2013, 138, 2877, doi:10.1039/c3an36922f.
Karaduman, I.; Er, E.; Çelikkan, H.; Erk, N.; Acar, S. Room-temperature ammonia gas sensor based on reduced graphene oxide nanocomposites decorated by Ag, Au and Pt nanoparticles. J. Alloy. Compd. 2017, 722, 569–578, doi:10.1016/j.jallcom.2017.06.152.
Gautam, M.; Jayatissa, A.H. Ammonia Gas Sensing Behavior of Graphene Surface Decorated with Gold Nanoparticles. Solid-State Electron. 2012, 78, 159–165, doi:10.1016/j.sse.2012.05.059.
Song, H.; Li, X.; Cui, P.; Guo, S.; Liu, W.; Wang, X. Morphology Optimization of CVD Graphene Decorated with Ag Nanoparticles as Ammonia Sensor. Sens. Actuators B Chem. 2017, 244, 124–130, doi:10.1016/j.snb.2016.12.133.
Khalil, I.; Julkapli, N.; Yehye, W.; Basirun, W.; Bhargava, S. Graphene–Gold Nanoparticles Hybrid—Synthesis, Functionalization, and Application in a Electrochemical and Surface-Enhanced Raman Scattering Biosensor. Materials 2016, 9, 406, doi:10.3390/ma9060406.
Gu, D.; Dey, S.K.; Majhi, P. Effective work function of Pt, Pd, and Re on atomic layer deposited HfO2. Appl. Phys. Lett. 2006, 89, 082907, doi:10.1063/1.2336718.
Yu, Y.-J.; Zhao, Y.; Ryu, S.; Brus, L.E.; Kim, K.S.; Kim, P. Tuning the Graphene Work Function by Electric Field Effect. Nano Lett. 2009, 9, 3430–3434, doi:10.1021/nl901572a.
Chu, B.H.; Lo, C.F.; Nicolosi, J.; Chang, C.Y.; Chen, V.; Strupinski, W.; Pearton, S.J.; Ren, F. Hydrogen detection using platinum coated graphene grown on SiC. Sens. Actuators B Chem. 2011, 157, 500–503, doi:10.1016/j.snb.2011.05.007.
Kumar, R.; Varandani, D.; Mehta, B.R.; Singh, V.N.; Wen, Z.; Feng, X.; Müllen, K. Fast response and recovery of hydrogen sensing in Pd–Pt nanoparticle–graphene composite layers. Nanotechnology 2011, 22, 275719.
Zhao, M.; Yan, L.; Zhang, X.; Xu, L.; Song, Z.; Chen, P.; Dong, F.; Chu, W. Room temperature NH3 detection of Ti/graphene devices promoted by visible light illumination. J. Mater. Chem. C 2017, 5, 1113–1120, doi:10.1039/C6TC04416F.
Jeevitha, G.; Abhinayaa, R.; Mangalaraj, D.; Ponpandian, N.; Meena, P.; Mounasamy, V.; Madanagurusamy, S. Porous reduced graphene oxide (rGO)/WO3 nanocomposites for the enhanced detection of NH 3 at room temperature. Nanoscale Adv. 2019, 1, 1799–1811, doi:10.1039/C9NA00048H.
Tai, H.; Yuan, Z.; Zheng, W.; Ye, Z.; Liu, C.; Du, X. ZnO Nanoparticles/Reduced Graphene Oxide Bilayer Thin Films for Improved NH3-Sensing Performances at Room Temperature. Nanoscale Res. Lett. 2016, 11, doi:10.1186/s11671-016-1343-7.
Hijazi, M.; Stambouli, V.; Rieu, M.; Tournier, G.; Pijolat, C.; Viricelle, J.-P. Sensitive and Selective Ammonia Gas Sensor Based on Molecularly Modified SnO2. Proceedings 2017, 1, 399, doi:10.3390/proceedings1040399.
Kumar, R.; Kushwaha, N.; Mittal, J. Superior, Rapid and Reversible Sensing Activity of Graphene-SnO Hybrid Film for Low Concentration of Ammonia at Room Temperature. Sens. Actuators B Chem. 2017, 244, 243–251, doi:10.1016/j.snb.2016.12.111.
Kodu, M.; Berholts, A.; Kahro, T.; Eriksson, J.; Yakimova, R.; Avarmaa, T.; Renge, I.; Alles, H.; Jaaniso, R. Graphene-Based Ammonia Sensors Functionalised with Sub-Monolayer V2O5: A Comparative Study of Chemical Vapour Deposited and Epitaxial Graphene †. Sensors 2019, 19, 951, doi:10.3390/s19040951.
Sun, D.; Luo, Y.; Debliquy, M.; Zhang, C. Graphene-enhanced metal oxide gas sensors at room temperature: A review. Beilstein J. Nanotechnol. 2018, 9, 2832–2844, doi:10.3762/bjnano.9.264.
Gupta Chatterjee, S.; Chatterjee, S.; Ray, A.K.; Chakraborty, A.K. Graphene–Metal Oxide Nanohybrids for Toxic Gas Sensor: A Review. Sens. Actuators B Chem. 2015, 221, 1170–1181, doi:10.1016/j.snb.2015.07.070.
Sahni, D.; Jea, A.; Mata, J.A.; Marcano, D.C.; Sivaganesan, A.; Berlin, J.M.; Tatsui, C.E.; Sun, Z.; Luerssen, T.G.; Meng, S.; et al. Biocompatibility of pristine graphene for neuronal interface: Laboratory investigation. J. Neurosurg. Pediatrics 2013, 11, 575– 583, doi:10.3171/2013.1.PEDS12374.
Midya, A.; Ghosh, R.; Santra, S.; Ray, S.K.; Guha, P.K. Reduced graphene oxide–rose bengal hybrid film for improved ammonia detection with low humidity interference at room temperature. Mater. Res. Express 2016, 3, 025101, doi:10.1088/2053-1591/3/2/025101.
Kumar, R.; Ghosh, R. Selective determination of ammonia, ethanol and acetone by reduced graphene oxide based gas sensors at room temperature. Sens. Bio-Sens. Res. 2020, 28, 100336, doi:10.1016/j.sbsr.2020.100336.
Alzate-Carvajal, N.; Luican-Mayer, A. Functionalized Graphene Surfaces for Selective Gas Sensing. ACS Omega 2020, 5, 21320–21329, doi:10.1021/acsomega.0c02861.
Sawada, K.; Tanaka, T.; Yokoyama, T.; Yamachi, R.; Oka, Y.; Chiba, Y.; Masai, H.; Terao, J.; Uchida, K. Co-porphyrin functionalized CVD graphene ammonia sensor with high selectivity to disturbing gases: Hydrogen and humidity. Jpn. J. Appl. Phys. 2020, 59, SGGG09, doi:10.35848/1347-4065/ab6b80.
Guo, Z.; Wang, B.; Wang, X.; Li, Y.; Gai, S.; Wu, Y.; Cheng, X. A high-sensitive room temperature gas sensor based on cobalt phthalocyanines and reduced graphene oxide nanohybrids for the ppb-levels of ammonia detection. RSC Adv. 2019, 9, 37518– 37525, doi:10.1039/C9RA08065A.
Zhou, X.; Wang, X.; Wang, B.; Chen, Z.; He, C.; Wu, Y. Preparation, characterization and NH3-sensing properties of reduced graphene oxide/copper phthalocyanine hybrid material. Sens. Actuators B Chem. 2014, 193, 340–348, doi:10.1016/j.snb.2013.11.090.
Tabery, H.M. Toxic effect of rose bengal dye on the living human corneal epithelium. Acta Ophthalmol. Scand. 1998, 76, 142–145, doi:10.1034/j.1600-0420.1998.760203.x.
Morales, M.-C.; Freire, V.; Asumendi, A.; Araiz, J.; Herrera, I.; Castiella, G.; Corcóstegui, I.; Corcóstegui, G. Comparative Effects of Six Intraocular Vital Dyes on Retinal Pigment Epithelial Cells. Investig. Opthalmol. Vis. Sci. 2010, 51, 6018, doi:10.1167/iovs.09-4916.
Bielecki, Z.; Stacewicz, T.; Smulko, J.; Wojtas, J. Ammonia Gas Sensors: Comparison of Solid-State and Optical Methods. Appl. Sci. 2020, 10, 5111, doi:10.3390/app10155111.
Bachhav, S.G.; Patil, D.R. Study of Polypyrrole-Coated MWCNT Nanocomposites for Ammonia Sensing at Room Temperature. J. Mater. Sci. Chem. Eng. 2015, 03, 30–44, doi:10.4236/msce.2015.310005.
Patois, T.; Sanchez, J.-B.; Berger, F.; Rauch, J.-Y.; Fievet, P.; Lakard, B. Ammonia Gas Sensors Based on Polypyrrole Films: Influence of Electrodeposition Parameters. Sens. Actuators B Chem. 2012, 171–172, 431–439, doi:10.1016/j.snb.2012.05.005.
Whitby, R.L.D.; Korobeinyk, A.; Mikhalovsky, S.V.; Fukuda, T.; Maekawa, T. Morphological Effects of Single-Layer Graphene Oxide in the Formation of Covalently Bonded Polypyrrole Composites Using Intermediate Diisocyanate Chemistry. J. Nanoparticle Res. 2011, 13, 4829–4837, doi:10.1007/s11051-011-0459-z.
Qi, J.; Xu, X.; Liu, X.; Lau, K.T. Fabrication of Textile Based Conductometric Polyaniline Gas Sensor. Sens. Actuators B Chem. 2014, 202, 732–740, doi:10.1016/j.snb.2014.05.138.
Harsányi, G. Polymer Films in Sensor Applications: A Review of Present Uses and Future Possibilities. Sens. Rev. 2000, 20, 98– 105.
Lv, A.; Pan, Y.; Chi, L. Gas Sensors Based on Polymer Field-Effect Transistors. Sensors 2017, 17, 213, doi:10.3390/s17010213.
Nylander, C.; Armgarth, M.; Lundström, I. An ammonia detector based on a conducting polymer. Anal. Chem. Symp. 1983, 17, 203–207.
Han, S.; Zhuang, X.; Shi, W.; Yang, X.; Li, L.; Yu, J. Poly(3-hexylthiophene)/polystyrene (P3HT/PS) blends based organic field-effect transistor ammonia gas sensor. Sens. Actuators B Chem. 2016, 225, 10–15, doi:10.1016/j.snb.2015.11.005.
Das, A.; Dost, R.; Richardson, T.; Grell, M.; Morrison, J.J.; Turner, M.L. A Nitrogen Dioxide Sensor Based on an Organic Transistor Constructed from Amorphous Semiconducting Polymers. Adv. Mater. 2007, 19, 4018–4023, doi:10.1002/adma.200701504.
Lv, A.; Wang, M.; Wang, Y.; Bo, Z.; Chi, L. Investigation into the Sensing Process of High-Performance H2S Sensors Based on Polymer Transistors. Chem. A Eur. J. 2016, 22, 3654–3659, doi:10.1002/chem.201504196.
Liao, F.; Yin, S.; Toney, M.F.; Subramanian, V. Physical discrimination of amine vapor mixtures using polythiophene gas sensor arrays. Sens. Actuators B Chem. 2010, 150, 254–263, doi:10.1016/j.snb.2010.07.006.
Lienerth, P.; Fall, S.; Lévêque, P.; Soysal, U.; Heiser, T. Improving the selectivity to polar vapors of OFET-based sensors by using the transfer characteristics hysteresis response. Sens. Actuators B Chem. 2016, 225, 90–95, doi:10.1016/j.snb.2015.11.012.
Chen, D.; Lei, S.; Chen, Y. A Single Polyaniline Nanofiber Field Effect Transistor and Its Gas Sensing Mechanisms. Sensors 2011, 11, 6509–6516, doi:10.3390/s110706509.
Chartuprayoon, N.; Hangarter, C.M.; Rheem, Y.; Jung, H.; Myung, N.V. Wafer-Scale Fabrication of Single Polypyrrole Nanoribbon-Based Ammonia Sensor. J. Phys. Chem. C 2010, 114, 11103–11108, doi:10.1021/jp102858w.
Park, S.; Park, C.; Yoon, H. Chemo-Electrical Gas Sensors Based on Conducting Polymer Hybrids. Polymers 2017, 9, 155, doi:10.3390/polym9050155.
Huang, X.; Hu, N.; Gao, R.; Yu, Y.; Wang, Y.; Yang, Z.; Siu-Wai Kong, E.; Wei, H.; Zhang, Y. Reduced graphene oxide– polyaniline hybrid: Preparation, characterization and its applications for ammonia gas sensing. J. Mater. Chem. 2012, 22, 22488, doi:10.1039/c2jm34340a.
Zaidi, S.A.; Shin, J.H. Molecularly imprinted polymer electrochemical sensors based on synergistic effect of composites synthesized from graphene and other nanosystems. Int. J. Electrochem. Sci. 2014, 9, 4598–4616.
Potje-Kamloth, K. Chemical Gas Sensors Based on Organic Semiconductor Polypyrrole. Crit. Rev. Anal. Chem. 2002, 32, 121– 140, doi:10.1080/10408340290765489.
Varghese, S.; Swaminathan, S.; Singh, K.; Mittal, V. Two-Dimensional Materials for Sensing: Graphene and Beyond. Electronics 2015, 4, 651–687, doi:10.3390/electronics4030651.
Tiwari, D.C.; Atri, P.; Sharma, R. Sensitive detection of ammonia by reduced graphene oxide/polypyrrole nanocomposites. Synth. Met. 2015, 203, 228–234, doi:10.1016/j.synthmet.2015.02.026.
Wang, Y.; Zhang, L.; Hu, N.; Wang, Y.; Zhang, Y.; Zhou, Z.; Liu, Y.; Shen, S.; Peng, C. Ammonia gas sensors based on chemically reduced graphene oxide sheets self-assembled on Au electrodes. Nanoscale Res. Lett. 2014, 9, doi:10.1186/1556-276X-9-251.
Hu, N.; Yang, Z.; Wang, Y.; Zhang, L.; Wang, Y.; Huang, X.; Wei, H.; Wei, L.; Zhang, Y. Ultrafast and sensitive room temperature NH3 gas sensors based on chemically reduced graphene oxide. Nanotechnology 2014, 25, 025502, doi:10.1088/0957-4484/25/2/025502.
Tang, X.; Lahem, D.; Raskin, J.-P.; Gerard, P.; Geng, X.; Andre, N.; Debliquy, M. A Fast and Room-Temperature Operation Ammonia Sensor Based on Compound of Graphene with Polypyrrole. IEEE Sens. J. 2018, 18, 9088–9096, doi:10.1109/JSEN.2018.2869203.
Tang, X.; Raskin, J.-P.; Kryvutsa, N.; Hermans, S.; Slobodian, O.; Nazarov, A.N.; Debliquy, M. An ammonia sensor composed of polypyrrole synthesized on reduced graphene oxide by electropolymerization. Sens. Actuators B Chem. 2020, 305, 127423, doi:10.1016/j.snb.2019.127423.
Yoon, T.; Jun, J.; Kim, D.Y.; Pourasad, S.; Shin, T.J.; Yu, S.U.; Na, W.; Jang, J.; Kim, K.S. Ultra-sensitive, flexible and transparent gas detection film based on well-ordered flat polypyrrole on single-layered graphene. J. Mater. Chem. A 2018, 17, doi:10.1039/C7TA10019A.
Wu, Z.; Chen, X.; Zhu, S.; Zhou, Z.; Yao, Y.; Quan, W.; Liu, B. Enhanced sensitivity of ammonia sensor using graphene/polyaniline nanocomposite. Sens. Actuators B Chem. 2013, 178, 485–493, doi:10.1016/j.snb.2013.01.014.
Seekaew, Y.; Lokavee, S.; Phokharatkul, D.; Wisitsoraat, A.; Kerdcharoen, T.; Wongchoosuk, C. Low-cost and flexible printed graphene–PEDOT: PSS gas sensor for ammonia detection. Org. Electron. 2014, 15, 2971–2981, doi:10.1016/j.orgel.2014.08.044.
Ly, T.N.; Park, S. Highly sensitive ammonia sensor for diagnostic purpose using reduced graphene oxide and conductive polymer. Sci. Rep. 2018, 8, doi:10.1038/s41598-018-36468-z.
Shen, W.-C.; Shih, P.-J.; Tsai, Y.-C.; Hsu, C.-C.; Dai, C.-L. Low-Concentration Ammonia Gas Sensors Manufactured Using the CMOS–MEMS Technique. Micromachines 2020, 11, 92, doi:10.3390/mi11010092.
Huang, X.; Hu, N.; Zhang, L.; Wei, L.; Wei, H.; Zhang, Y. The NH3 sensing properties of gas sensors based on aniline reduced graphene oxide. Synth. Met. 2013, 185–186, 25–30, doi:10.1016/j.synthmet.2013.09.034.
Bai, S.; Zhao, Y.; Sun, J.; Tian, Y.; Luo, R.; Li, D.; Chen, A. Ultrasensitive room temperature NH 3 sensor based on a graphene– polyaniline hybrid loaded on PET thin film. Chem. Commun. 2015, 51, 7524–7527, doi:10.1039/C5CC01241D.
Qin, Y.; Zhang, B.; Zhang, Z. Combination of PPy with three-dimensional rGO to construct bioinspired nanocomposite for NH3-sensing enhancement. Org. Electron. 2019, 70, 240–245, doi:10.1016/j.orgel.2019.04.023.
Huang, X.L.; Hu, N.T.; Wang, Y.Y.; Zhang, Y.F. Ammonia Gas Sensor Based on Aniline Reduced Graphene Oxide. Adv. Mater. Res. 2013, 669, 79–84, doi:10.4028/www.scientific.net/AMR.669.79.
Hasani, A.; Sharifi Dehsari, H.; Asghari Lafmejani, M.; Salehi, A.; Afshar Taromi, F.; Asadi, K.; Kim, S.Y. Ammonia-Sensing Using a Composite of Graphene Oxide and Conducting Polymer. Phys. Status solidi (Rrl) Rapid Res. Lett. 2018, 12, 1800037, doi:10.1002/pssr.201800037.
Sun, J.; Shu, X.; Tian, Y.; Tong, Z.; Bai, S.; Luo, R.; Li, D.; Liu, C.C. Facile preparation of polypyrrole-reduced graphene oxide hybrid for enhancing NH3 sensing at room temperature. Sens. Actuators B Chem. 2017, 241, 658–664, doi:10.1016/j.snb.2016.10.047.
Mishra, S.K.; Tripathi, S.N.; Choudhary, V.; Gupta, B.D. SPR based fibre optic ammonia gas sensor utilizing nanocomposite film of PMMA/reduced graphene oxide prepared by in situ polymerization. Sens. Actuators B Chem. 2014, 199, 190–200, doi:10.1016/j.snb.2014.03.109.
Šetka, M.; Drbohlavová, J.; Hubálek, J. Nanostructured Polypyrrole-Based Ammonia and Volatile Organic Compound Sensors. Sensors 2017, 17, 562, doi:10.3390/s17030562.
Mahajan, C.; Chaudhari, P.; Mishra, S. RGO–MWCNT–ZnO based polypyrrole nanocomposite for ammonia gas sensing. J. Mater. Sci. Mater. Electron. 2018, 29, 8039–8048, doi:10.1007/s10854-018-8810-0.
Hwang, S.; Lim, J.; Park, H.G.; Kim, W.K.; Kim, D.-H.; Song, I.S.; Kim, J.H.; Lee, S.; Woo, D.H.; Chan Jun, S. Chemical vapor sensing properties of graphene based on geometrical evaluation. Curr. Appl. Phys. 2012, 12, 1017–1022, doi:10.1016/j.cap.2011.12.021.
Crowther, A.C.; Ghassaei, A.; Jung, N.; Brus, L.E. Strong Charge-Transfer Doping of 1 to 10 Layer Graphene by NO2. Acs Nano 2012, 6, 1865–1875, doi:10.1021/nn300252a.
Song, H.; Li, X.; Cui, P.; Guo, S.; Liu, W.; Wang, X. Sensitivity investigation for the dependence of monolayer and stacking graphene NH 3 gas sensor. Diam. Relat. Mater. 2017, 73, 56–61, doi:10.1016/j.diamond.2016.11.013.
Samaddar, P.; Son, Y.-S.; Tsang, D.C.W.; Kim, K.-H.; Kumar, S. Progress in graphene-based materials as superior media for sensing, sorption, and separation of gaseous pollutants. Coord. Chem. Rev. 2018, 368, 93–114, doi:10.1016/j.ccr.2018.04.013.
Slobodian, O.M.; Milovanov, Yu.S.; Skryshevsky, Vasin, V.A.; Tang, X.; Raskin, J.-P.; Lytvyn, P.M.; Svezhentsova, K.V.; Malyuta, S.V.; Nazarov, A.N. Reduced graphene oxide obtained using the spray pyrolysis technique for gas sensing, Semicond. Phys. Quantum Electron. Optoelectron. 2019, 22, 98–103, doi:10.15407/spqeo22.01.098.
Dong, L.; Chen, Z.; Zhao, X.; Ma, J.; Lin, S.; Li, M.; Bao, Y.; Chu, L.; Leng, K.; Lu, H.; et al. A non-dispersion strategy for large-scale production of ultra-high concentration graphene slurries in water. Nat. Commun. 2018, 9, doi:10.1038/s41467-017-02580-3.
Shi, P.C.; Guo, J.P.; Liang, X.; Cheng, S.; Zheng, H.; Wang, Y.; Chen, C.H.; Xiang, H.F. Large-scale production of high-quality graphene sheets by a non-electrified electrochemical exfoliation method. Carbon 2018, 126, 507–513, doi:10.1016/j.carbon.2017.10.071.
Tamersit, K.; Djeffal, F.; Meguellati, M. Numerical Modeling of a Deep Submicron Gas Sensor Based on Double-Gate Graphene Nanoribbon Field-Effect Transistor. Proc. World Congr. Eng. 2015, pp. 396-399.
Cadore, A.R.; Mania, E.; Alencar, A.B.; Rezende, N.P.; de Oliveira, S.; Watanabe, K.; Taniguchi, T.; Chacham, H.; Campos, L.C.; Lacerda, R.G. Enhancing the response of NH3 graphene-sensors by using devices with different graphene-substrate distances. Sens. Actuators B Chem. 2018, 266, 438–446, doi:10.1016/j.snb.2018.03.164.
Teradal, N.L.; Marx, S.; Morag, A.; Jelinek, R. Porous graphene oxide chemi-capacitor vapor sensor array. J. Mater. Chem. C 2017, 5, 1128–1135, doi:10.1039/C6TC05364E.
Paul, R.K.; Badhulika, S.; Saucedo, N.M.; Mulchandani, A. Graphene Nanomesh As Highly Sensitive Chemiresistor Gas Sensor. Anal. Chem. 2012, 84, 8171–8178, doi:10.1021/ac3012895.
Wu, J.; Tao, K.; Guo, Y.; Li, Z.; Wang, X.; Luo, Z.; Feng, S.; Du, C.; Chen, D.; Miao, J.; et al. A 3D Chemically Modified Graphene Hydrogel for Fast, Highly Sensitive, and Selective Gas Sensor. Adv. Sci. 2017, 4, 1600319, doi:10.1002/advs.201600319.
Duy, L.T.; Kim, D.-J.; Trung, T.Q.; Dang, V.Q.; Kim, B.-Y.; Moon, H.K.; Lee, N.-E. High Performance Three-Dimensional Chemical Sensor Platform Using Reduced Graphene Oxide Formed on High Aspect-Ratio Micro-Pillars. Adv. Funct. Mater. 2015, 25, 883–890, doi:10.1002/adfm.201401992.
Zhang, H.; Fan, L.; Dong, H.; Zhang, P.; Nie, K.; Zhong, J.; Li, Y.; Guo, J.; Sun, X. Spectroscopic Investigation of Plas-ma-Fluorinated Monolayer Graphene and Application for Gas Sensing. ACS Appl. Mater. Interfaces 2016, 8, 8652–8661, doi:10.1021/acsami.5b11872.
Kim, Y.H.; Park, J.; Choi, Y.R.; Park, S.Y.; Lee, S.Y.; Sohn, W.; Shim, Y.; Lee, J.; Park, C.R.; Choi, Y.S.; et al. Chemically Fluorinated Graphene Oxide for Room Temperature Ammonia Detection Capability at ppb Levels. J. Mater. Chem. A 2017, 5, 19116–19125, doi:10.1039/C7TA05766K.
Su, P.-G.; Yang, L.-Y. NH 3 gas sensor based on Pd/SnO 2 /RGO ternary composite operated at room-temperature. Sens. Actuators B Chem. 2016, 223, 202–208, doi:10.1016/j.snb.2015.09.091.
Su, P.-G.; Chen, F.-Y.; Wei, C.-H. Simple one-pot polyol synthesis of Pd nanoparticles, TiO2 microrods and reduced graphene oxide ternary composite for sensing NH3 gas at room temperature. Sens. Actuators B Chem. 2018, 254, 1125–1132, doi:10.1016/j.snb.2017.07.199.
Xiang, C.; Jiang, D.; Zou, Y.; Chu, H.; Qiu, S.; Zhang, H.; Xu, F.; Sun, L.; Zheng, L. Ammonia Sensor Based on Polypyrrole– Graphene Nanocomposite Decorated with Titania Nanoparticles. Ceram. Int. 2015, 41, 6432–6438, doi:10.1016/j.ceramint.2015.01.081.
Ben Aziza, Z.; Zhang, Q.; Baillargeat, D. Graphene/mica based ammonia gas sensors. Appl. Phys. Lett. 2014, 105, 254102, doi:10.1063/1.4905039.
Deokar, G.; Casanova-Cháfer, J.; Rajput, N.S.; Aubry, C.; Llobet, E.; Jouiad, M.; Costa, P.M.F.J. Wafer-scale few-layer graphene growth on Cu/Ni films for gas sensing applications. Sens. Actuators B Chem. 2020, 305, 127458, doi:10.1016/j.snb.2019.127458.
Mackin, C.; Schroeder, V.; Zurutuza, A.; Su, C.; Kong, J.; Swager, T.M.; Palacios, T. Chemiresistive Graphene Sensors for Ammonia Detection. ACS Appl. Mater. Interfaces 2018, 10, 16169–16176, doi:10.1021/acsami.8b00853.
Choi, J.H.; Lee, J.; Byeon, M.; Hong, T.E.; Park, H.; Lee, C.Y. Graphene-Based Gas Sensors with High Sensitivity and Minimal Sensor-to-Sensor Variation. ACS Appl. Nano Mater. 2020, 3, 2257–2265, doi:10.1021/acsanm.9b02378.