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1

Cao, Xiao Qiang, Xian Jun Lv, Jun Qiu, Shu Gang Hu, Sheng Rong Liu y Xue Min Huang. "Catalytic Oxidation of Toluene over CuyMnzOx/γ-Al2O3 Catalysts". Advanced Materials Research 454 (enero de 2012): 7–10. http://dx.doi.org/10.4028/www.scientific.net/amr.454.7.

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Experimental investigations using granular activated carbon (GAC) adsorption and then desorpted with microwave irradiation for toluene abatement are reported in this paper. The results indicated that For different kinds of catalysts, Cu0.33Mn0.67Ox/γ-Al2O3 had the highest catalytic activity. For toluene combustion, the temperature required for 99% toluene conversion was lower than 300°C. In combination process of microwave desorption with catalytic combustion, the toluene conversion was ranged from 92% to 99% and the optimum volume flow rate ratio of carrier and air was 1:1.
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2

Mo, Shengpeng, Qi Zhang, Yuhai Sun, Mingyuan Zhang, Jiaqi Li, Quanming Ren, Mingli Fu, Junliang Wu, Limin Chen y Daiqi Ye. "Gaseous CO and toluene co-oxidation over monolithic core–shell Co3O4-based hetero-structured catalysts". Journal of Materials Chemistry A 7, n.º 27 (2019): 16197–210. http://dx.doi.org/10.1039/c9ta03750k.

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Gaseous CO co-existence could improve catalytic toluene oxidation over Co3O4-based catalysts, and the reaction mechanism on the CO/toluene oxidation may be mutually independent in the presence of both CO and toluene.
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3

Miki, Takeshi y Yutaka Tai. "Catalytic Oxidation of Toluene over Fe2O3/Al2O3 Catalyst". Materials Science Forum 695 (julio de 2011): 101–4. http://dx.doi.org/10.4028/www.scientific.net/msf.695.101.

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Fe2O3/Al2O3 catalyst was prepared and the catalytic oxidation of toluene over the catalyst was investigated. The catalyst was prepared by wet impregnation of commercial alumina support. The support was impregnated with an aqueous solution of iron nitrate. The wet support was dried and calcined at 600-800 °C. The catalytic property of the catalyst was measured by the light-off curve of CO2 yield. All these catalysts were active for total oxidation of toluene above 250 °C. The catalytic activity of catalyst calcined at 600 °C was better than those of catalysts calcined at 700 and 800 °C.
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4

Ren, Ai Ling, Dan Dan Zhang, Er Hong Duan, Bin Guo y Jian Zhong Chen. "pH of Toluene in [Bmim][BF4] and [Bmim][PF6] Ionic Liquids". Advanced Materials Research 393-395 (noviembre de 2011): 1328–33. http://dx.doi.org/10.4028/www.scientific.net/amr.393-395.1328.

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The pH value of binary mixtures containing toluene and 1-butyl-3-methylimidazolium hexafluorophosphate ([Bmim][PF6]) and 1-butyl-3-methylimidazolium tetrafluoroborate ([Bmim][BF4]) ionic liquids over the range of ionic liquids mole fraction (xIL) from (1.0 to 0.60) and temperature range from (293.15 to 340.65) K were measured. The range of the pH values of toluene and [Bmim][BF4] and [Bmim][PF6] were from (3.16 to 4.63) and (5.57 to 7.55), respectively. Comparison showed that the pH of toluene in the two ionic liquids was in sequence: [Bmim][BF4] < [Bmim][PF6]. The temperature dependency of the pH value was correlated using an empirical equation. The correlations gave satisfactory results.
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5

Ohkubo, Kei, Kensaku Hirose y Shunichi Fukuzumi. "Two-phase oxidation of toluene derivatives by dioxygen using the 3-cyano-1-decylquinolinium ion as a photocatalyst". RSC Advances 6, n.º 47 (2016): 41011–14. http://dx.doi.org/10.1039/c6ra05993g.

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The two-phase photocatalytic oxidation of toluene by O2 occurred efficiently using the 3-cyano-1-decylquinolinium ion in toluene with H2O to produce the oxygenated products in the organic phase and H2O2 in the aqueous phase.
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6

Cheng, Kai Yuan, Chen Yu Chang, Yung Hsu Hsieh, Kuo Shan Yao, Ta Chih Cheng y Chun Yang Cheng. "Catalytic Destruction and Removal of Toluene by Microwave/Fe3O4 System". Advanced Materials Research 47-50 (junio de 2008): 335–38. http://dx.doi.org/10.4028/www.scientific.net/amr.47-50.335.

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A microwave/Fe3O4 catalytic system was proposed for treatment of volatile organic carbons (VOCs). This system comprises a household microwave oven modified as the reaction chamber, which was fitted with a vertical, cylindrical quartz reactor comprising a catalytic packed column filled with granular Fe3O4, a microwave catalyst of iron (II, III) oxide. Experimental results showed that the destruction and removal efficiency (DRE) of toluene by microwave alone was close to zero, but with the microwave/Fe3O4 system, the temperature of the catalytic packed column increased rapidly and reached thermal balance within 10-15 min. Analysis of the rear gas after combustion showed that most of the toluene was thermal oxidized into CO2 and H2O. The successful application of the proposed microwave/Fe3O4 system to thermal destruction of toluene promises a new technology for treatment of VOCs.
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7

Su, Weitao, Honglei Dou, Jinwei Li, Dexuan Huo, Ning Dai y Li Yang. "Tuning photoluminescence of single-layer MoS2using H2O2". RSC Advances 5, n.º 101 (2015): 82924–29. http://dx.doi.org/10.1039/c5ra12450f.

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The PL intensity of 1L MoS2is greatly enhanced by physisorption of H2O2molecules that act as p-type dopants. By using toluene to form the sandwiched structure of H2O2/1L-MoS2/toluene, the PL intensity of 1L MoS2can be enhanced up to 27.4 times.
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8

Donnelly, Jane M., Frederik Lermyte, Juliusz A. Wolny, Marc Walker, Ben G. Breeze, Russell J. Needham, Christina S. Müller et al. "Cu(iii)–bis-thiolato complex forms an unusual mono-thiolato Cu(iii)–peroxido adduct". Chemical Communications 57, n.º 1 (2021): 69–72. http://dx.doi.org/10.1039/d0cc06921c.

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The square-planar complex [bis(toluene-3,4-dithiolato)copper(iii)][NEt3H], characterised by X-ray photoelectron spectroscopy and DFT, fragments in FTICR-MS to form [(toluene-3,4-dithiolato)Cu(iii)(peroxide)] by reaction with O2.
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9

Chen, Yu-Wen y Der-Shing Lee. "Catalytic Combustion of Toluene on Pd/CeO2–TiO2 Catalysts". Journal of Nanoscience and Nanotechnology 13, n.º 3 (1 de marzo de 2013): 2171–78. http://dx.doi.org/10.1166/jnn.2013.6895.

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10

Yang, Yang, Si Hui Zhan, Xi Chao Gao, Shan Shan Yang, Guang Yuan Ren, Yi Li, Jing Jing y Hong Bing Yu. "Degradation of Toluene Using Modified TiO2 as Photocatalysts". Advanced Materials Research 669 (marzo de 2013): 7–18. http://dx.doi.org/10.4028/www.scientific.net/amr.669.7.

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Volatile organic compounds (VOCs), especially toluene as the typical indoor air pollutants, are toxic and environmentally persistent whose removal is undoubtedly becoming increasingly urgent matter over these years. Titania is one of the most promising photocatalysts for the degradation of organic compounds, whereas the large band gap of titania and massive recombination of photogenerated charge carriers limit its overall photocatalytic effciency. These defects can be tackled by modifying the electronic band structure of titania including various strategies like metal deposition, non-metal atoms substitution, transition metal ions doping, and coupling with a narrow band gap semiconductor, etc. This review encompasses several advancements made in these aspects, and also the influence factors such as physical morphologies changing, humidity, as well as the presence of O2 etc, are involved. To be practically considering, TiO2 photocatalysts require being fixed on the bulky supports like silica, alumina, clays and activated carbons. Moreover, photocatalytic coatings deposited on external building materials, like roofing tiles and corrugated sheets, is becoming the attractive application potentials to remove toluene from air.
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11

Yong-Jun, ZHENG y ELI Wumanjiang. "Phase Behavior of Tween80/BmimPF6/Alcohol/Toluene Systems". Acta Physico-Chimica Sinica 24, n.º 11 (2008): 2143–48. http://dx.doi.org/10.3866/pku.whxb20081135.

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12

Falkowska, Marta, Sarayute Chansai, Haresh G. Manyar, Lynn F. Gladden, Daniel T. Bowron, Tristan G. A. Youngs y Christopher Hardacre. "Determination of toluene hydrogenation kinetics with neutron diffraction". Physical Chemistry Chemical Physics 18, n.º 26 (2016): 17237–43. http://dx.doi.org/10.1039/c6cp01494a.

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Total neutron scattering has been used to follow the hydrogenation of toluene-d8 to methylcyclohexane-d14 over 3 wt% platinum supported on highly ordered mesoporous silica (MCM-41) at 298 K and under 150–250 mbar D2 pressure.
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13

Xie, Hong Yong, Shen Wen Chen, Chang Wen Ma, Jing Rong Wang, Lu Ping Zhu, Ling Ling Wang, Gui Lan Gao, Li Jun Wang y Hao Yuan. "Photodegradation of Toluene by TiO2 Nanoparticles by Flame CVD Process". Advanced Materials Research 233-235 (mayo de 2011): 1474–78. http://dx.doi.org/10.4028/www.scientific.net/amr.233-235.1474.

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Photo-degradation of toluene at ppb levels by mixed-phase TiO2 nanoparticles, synthesized by the oxidation of TiCl4 in propane/air flame chemical vapor deposition (CVD) process, has been investigated experimentally by using a tubular photoreactor with thin TiO2 films coated on the reactor wall by sedimentation. Effects of toluene at initial concentration at ppb levels, rutile mass fraction and photoluminescence (PL) spectra of TiO2 nanoparticles on degradation degree have been investigated under the conditions of 5.7 seconds of residence time, 70% relative humidity, 38mg/cm2 of TiO2 loading, 25mW/cm2 of irradiation with main wavelength of 254nm.
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14

Wei, Jing, Lin Wu, Hao Zhu, Yiguo Li y Zongbao Wang. "Formation of well-organized, concentric-ringed spherulites of four-arm star symmetric PEO-b-PCL via confined evaporative crystallization". CrystEngComm 22, n.º 42 (2020): 7016–24. http://dx.doi.org/10.1039/d0ce01183e.

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Toluene solvent-assisted topology confinement facilitates PCL block templated rhythmic crystallization into concentric-ringed spherulites of star symmetric P(EO2.5k-b-CL2.7k)4.
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15

Wang, Tianshuang, Zhangshu Huang, Zhangduo Yu, Boqun Wang, Hui Wang, Peng Sun, Hui Suo et al. "Low operating temperature toluene sensor based on novel α-Fe2O3/SnO2 heterostructure nanowire arrays". RSC Advances 6, n.º 58 (2016): 52604–10. http://dx.doi.org/10.1039/c6ra05313k.

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16

Zhang, Jiajun, Pinggui Tang, Tongyuan Liu, Yongjun Feng, Chris Blackman y Dianqing Li. "Facile synthesis of mesoporous hierarchical Co3O4–TiO2 p–n heterojunctions with greatly enhanced gas sensing performance". Journal of Materials Chemistry A 5, n.º 21 (2017): 10387–97. http://dx.doi.org/10.1039/c6ta11208k.

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Mesoporous hierarchical Co3O4–TiO2 p–n heterojunctions, derived from hierarchical CoTi-LDH precursors, exhibit an excellent sensing performance towards toluene and xylene.
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17

Zhao, Changhui, Baoyu Huang, Jinyuan Zhou y Erqing Xie. "Synthesis of porous Co3O4 nanonetworks to detect toluene at low concentration". Phys. Chem. Chem. Phys. 16, n.º 36 (2014): 19327–32. http://dx.doi.org/10.1039/c4cp02961e.

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18

Ahmed, Ejaz y Alexander Rothenberger. "KFeSbTe3: a quaternary chalcogenide aerogel for preferential adsorption of polarizable hydrocarbons and gases". Journal of Materials Chemistry A 3, n.º 15 (2015): 7786–92. http://dx.doi.org/10.1039/c4ta06957a.

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19

Yang, Qilei, Dong Wang, Chizhong Wang, Xianfeng Li, Kezhi Li, Yue Peng y Junhua Li. "Facile surface improvement method for LaCoO3 for toluene oxidation". Catalysis Science & Technology 8, n.º 12 (2018): 3166–73. http://dx.doi.org/10.1039/c8cy00765a.

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LaCoO3 (LCO-0) perovskite catalysts were synthesized by the traditional citrate sol-gel method for toluene oxidation. The catalytic activity of the modified LaCoO3 (LCO-1) by acetic acid significantly increased.
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20

Lai, Xiaoxiao, Jie Feng, Xiaoying Zhou, Zhongyan Hou, Tao Lin y Yaoqiang Chen. "Catalytic Oxidation of Toluene Over Potassium Modified Mn/Ce0.65Zr0.35O2 Catalyst". Acta Physico-Chimica Sinica 36, n.º 8 (2020): 1905047–0. http://dx.doi.org/10.3866/pku.whxb201905047.

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21

Wang, Rui, Jiaze Ren, Jiangyou Wu y Lanlan Wu. "Characteristics and mechanism of toluene removal by double dielectric barrier discharge combined with an Fe2O3/TiO2/γ-Al2O3 catalyst". RSC Advances 10, n.º 68 (2020): 41511–22. http://dx.doi.org/10.1039/d0ra07938c.

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22

Fareghi-Alamdari, Reza, Farzad Zandi y Mohammad Hossein Keshavarz. "Copper–cobalt synergy in Cu1−xCoxFe2O4spinel ferrite as a highly efficient and regioselective nanocatalyst for the synthesis of 2,4-dinitrotoluene". RSC Advances 5, n.º 88 (2015): 71911–21. http://dx.doi.org/10.1039/c5ra11338e.

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23

Liu, Xiaolong, Jian Wang, Junlin Zeng, Xue Wang y Tingyu Zhu. "Catalytic oxidation of toluene over a porous Co3O4-supported ruthenium catalyst". RSC Advances 5, n.º 64 (2015): 52066–71. http://dx.doi.org/10.1039/c5ra07072d.

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Porous Co3O4-MOF and Ru/Co3O4-MOF were prepared and applied in the catalytic oxidation of toluene. Ru/Co3O4-MOF showed higher catalytic performance than other materials. The stability and water-resistence of the catalyst were also studied.
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24

Xu, Cai, Xiaozhong Wang, Yingqi Chen y Liyan Dai. "Synergistic effect between Cu–Cr bimetallic oxides supported on g-C3N4 for the selective oxidation of toluene to benzaldehyde". Catalysis Science & Technology 9, n.º 16 (2019): 4441–50. http://dx.doi.org/10.1039/c9cy00743a.

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25

Markiewicz, Marta, Ya-Qi Zhang, Michael T. Empl, Marianna Lykaki, Jorg Thöming, Pablo Steinberg y Stefan Stolte. "Hazard assessment of quinaldine-, alkylcarbazole-, benzene- and toluene-based liquid organic hydrogen carrier (LOHCs) systems". Energy & Environmental Science 12, n.º 1 (2019): 366–83. http://dx.doi.org/10.1039/c8ee01696h.

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Proactive, comparative environmental hazard assessment of LOHC systems based on alkylcarbazoles, quinaldine, benzene and toluene including H2-rich, H2-lean and partially hydrogenated forms.
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26

Bai, Shouli, Long Du, Jianhua Sun, Ruixian Luo, Dianqing Li, Aifan Chen y Chung-Chiun Liu. "Preparation of reduced graphene oxide/Co3O4 composites and sensing performance to toluene at low temperature". RSC Advances 6, n.º 65 (2016): 60109–16. http://dx.doi.org/10.1039/c6ra06542b.

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27

Garrido-Olvera, L. Pamela, Jonathan E. Sanchez-Bautista, Daniel Alvarado-Alvarado, Bruno Landeros-Rivera, J. Raziel Álvarez, Rubicelia Vargas, Eduardo González-Zamora et al. "Confined toluene within InOF-1: CO2 capture enhancement". RSC Advances 9, n.º 56 (2019): 32864–72. http://dx.doi.org/10.1039/c9ra05991a.

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28

Cao, Xiao Qiang, Xian Jun Lv, Jun Qiu, Shu Gang Hu, Sheng Rong Liu y Xue Min Huang. "Catalytic Oxidation of Toluene over CuyMnzOx/γ-Al2O3 Catalysts". Advanced Materials Research 454 (enero de 2012): 7–10. http://dx.doi.org/10.4028/scientific5/amr.454.7.

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29

Sakai, Nobuya, Sandeep Pathak, Hsin-Wei Chen, Amir A. Haghighirad, Samuel D. Stranks, Tsutomu Miyasaka y Henry J. Snaith. "The mechanism of toluene-assisted crystallization of organic–inorganic perovskites for highly efficient solar cells". Journal of Materials Chemistry A 4, n.º 12 (2016): 4464–71. http://dx.doi.org/10.1039/c6ta01087c.

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We investigate the influence of solvent drenching in hybrid organic–inorganic perovskite (CH3NH3PbX) crystallization process with a non-solvent, toluene, during film fabrication process.
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30

Zhou, Xiaoying, Yingnan Shang, Wei Wei, Tao Lin, Jiecai Wang, Xiaoxiao Lai, Jianli Wang y Yaoqiang Chen. "Effect of a mixed precursor over monolith MnOx/La–Al2O3 catalyst for toluene oxidation". New Journal of Chemistry 44, n.º 26 (2020): 10859–69. http://dx.doi.org/10.1039/d0nj01432j.

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The MNMA catalyst prepared with a mixed precursor of Mn(NO3)2 and Mn(Ac)2·4H2O possesses more α-MnO2 species and good dispersion and is more active for toluene oxidation.
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31

Hou, Zhongyan, Xiaoying Zhou, Tao Lin, Yaoqiang Chen, Xiaoxiao Lai, Jie Feng y Mengmeng Sun. "The promotion effect of tungsten on monolith Pt/Ce0.65Zr0.35O2 catalysts for the catalytic oxidation of toluene". New Journal of Chemistry 43, n.º 15 (2019): 5719–26. http://dx.doi.org/10.1039/c8nj06245e.

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The temperature for the complete conversion of toluene on the monolith Pt-WO3/Ce0.65Zr0.35O2 catalyst decreases by about 30 °C compared to that on Pt/Ce0.65Zr0.35O2.
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32

Ishihara, Atsushi, Yuu Tsuchimori y Tadanori Hashimoto. "Dehydrocyclization–cracking of methyl oleate by Pt catalysts supported on a ZnZSM-5–Al2O3 hierarchical composite". RSC Advances 11, n.º 32 (2021): 19864–73. http://dx.doi.org/10.1039/d1ra02677a.

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33

Du, Xuebi, Fang Dong, Zhicheng Tang y Jiyi Zhang. "Precise design and synthesis of Pd/InOx@CoOx core–shell nanofibers for the highly efficient catalytic combustion of toluene". Nanoscale 12, n.º 22 (2020): 12133–45. http://dx.doi.org/10.1039/d0nr02334e.

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In this work, Pd/InOx@CoOx core–shell nanofibers, CoOx@Pd/InOx core–shell nanofibers and Pd/InOx/CoOx nanofibers with different morphologies have been successfully synthesized for the catalytic combustion of toluene.
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34

Ramalakshmi, Rongala, K. Maheswari, Dudekula Sharmila, Anamika Paul, Thierry Roisnel, Jean-François Halet y Sundargopal Ghosh. "Reactivity of cyclopentadienyl transition metal(ii) complexes with borate ligands: structural characterization of the toluene-activated molybdenum complex [Cp*Mo(CO)2(η3-CH2C6H5)]". Dalton Transactions 45, n.º 41 (2016): 16317–24. http://dx.doi.org/10.1039/c6dt02641a.

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Unprecedented formation of a toluene activated complex, [Cp*Mo(CO)2(CH2C6H5)], in an η3-fashion was elucidated by the reaction of [Cp*Mo(CO)3Cl] with [NaBt2].
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35

Ray, Anamika, Haridas Pal y Sumanta Bhattacharya. "Photophysical insights into fullerene–porphyrazine supramolecular interactions in solution". RSC Advances 5, n.º 36 (2015): 28497–504. http://dx.doi.org/10.1039/c5ra02003d.

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This communication reports supramolecular interactions of a porphyrazine derivative, namely, 2,7,12,17-tetra-tert-butyl-5,10,15,20-tetraaza-21H,23H-porphine (1) with C60 and C70 in toluene and dichlorobenzene.
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36

Huang, Yongchao, Haibo Li, Muhammad-Sadeeq Balogun, Hao Yang, Yexiang Tong, Xihong Lu y Hongbing Ji. "Three-dimensional TiO2/CeO2 nanowire composite for efficient formaldehyde oxidation at low temperature". RSC Advances 5, n.º 10 (2015): 7729–33. http://dx.doi.org/10.1039/c4ra13906b.

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TiO2/CeO2 nanowires exhibited superior catalytic activity that could convert 60.2% of HCHO to CO2 and H2O at a low temperature of 60 °C, and also showed a good catalytic activity toward toluene oxidation.
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37

Sathasivam, Sanjayan, Ranga R. Arnepalli, Kaushal K. Singh, Robert J. Visser, Christopher S. Blackman y Claire J. Carmalt. "A solution based route to GaAs thin films from As(NMe2)3 and GaMe3 for solar cells". RSC Advances 5, n.º 16 (2015): 11812–17. http://dx.doi.org/10.1039/c4ra13902j.

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The novel deposition of GaAs thin films on glass substrates from a solution based route involving the aerosol assisted chemical vapour deposition (AACVD) of As(NMe2)3 and GaMe3 dissolved in toluene is reported.
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38

Tangestanifard, Maryam y Hassan S. Ghaziaskar. "Methylation of toluene with methanol in sub/supercritical toluene using H-beta zeolite as catalyst". Journal of Supercritical Fluids 113 (julio de 2016): 80–88. http://dx.doi.org/10.1016/j.supflu.2016.03.013.

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39

Shao-Wu, Xia, Wei Qing-Li y Zhang Shu-Sheng. "Studies on the Solvation of Fullerene (C60) in Toluene Medium". Acta Physico-Chimica Sinica 13, n.º 11 (1997): 1029–33. http://dx.doi.org/10.3866/pku.whxb19971114.

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40

Issac, Riju C. "Photoacoustic signal saturation and optical limiting in C70-toluene solution". Optical Engineering 36, n.º 2 (1 de febrero de 1997): 332. http://dx.doi.org/10.1117/1.601205.

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41

Zhou, Jiliang, Hyehwang Kim, Liu Leo Liu, Levy L. Cao y Douglas W. Stephan. "An arene-stabilized η5-pentamethylcyclopentadienyl antimony dication acts as a source of Sb+ or Sb3+ cations". Chemical Communications 56, n.º 85 (2020): 12953–56. http://dx.doi.org/10.1039/d0cc02710c.

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The dicationic compound [(η5-Cp*)Sb(tol)][B(C6F5)4]2 (1) (tol = toluene), which exhibits strong Lewis acidity, reacts with Lewis bases to provide Sb+ or Sb3+ cations.
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42

Li, Lei, Meijie Wei, Feng Chen y Weijie Ji. "Pt-Embedded-Co3O4 hollow structure as a highly efficient catalyst for toluene combustion". Catalysis Science & Technology 11, n.º 16 (2021): 5491–97. http://dx.doi.org/10.1039/d1cy00653c.

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Pt embedded Co3O4 hollow structure nanocomposites (Pt@Co3O4) were facilely prepared through metal–organic frameworks (MOFs) sacrificial strategy. Compared with Pt/Co3O4 and bare Co3O4 catalyst, it shows excellent toluene combustion performance.
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43

El-Henawey, M. I., Ryan S. Gebhardt, M. M. El-Tonsy y Sumit Chaudhary. "Organic solvent vapor treatment of lead iodide layers in the two-step sequential deposition of CH3NH3PbI3-based perovskite solar cells". Journal of Materials Chemistry A 4, n.º 5 (2016): 1947–52. http://dx.doi.org/10.1039/c5ta08656f.

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The two step sequential deposition of CH3NH3PbI3-based perovskite solar cells has been modified by applying toluene and chlorobenzene vapors during the preparation of PbI2 films leading to the growth of the PbI2 grain size.
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44

Wang, Hong, Xing'an Dong, Wen Cui, Jieyuan Li, Yanjuan Sun, Ying Zhou, Hongwei Huang, Yuxin Zhang y Fan Dong. "High-surface energy enables efficient and stable photocatalytic toluene degradationviathe suppression of intermediate byproducts". Catalysis Science & Technology 9, n.º 11 (2019): 2952–59. http://dx.doi.org/10.1039/c9cy00308h.

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The high surface energy of ZnGa2O4favors the chemical adsorption of reactants on the catalyst surface, which facilitates the activation and ring opening of toluene derivatives to maintain high stability.
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45

Huang, He, Chuanhui Zhang, Lei Wang, Genqin Li, Liang Song, Guangci Li, Sifu Tang y Xuebing Li. "Promotional effect of HZSM-5 on the catalytic oxidation of toluene over MnOx/HZSM-5 catalysts". Catalysis Science & Technology 6, n.º 12 (2016): 4260–70. http://dx.doi.org/10.1039/c5cy02011e.

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The cooperative action between the redox ability of MnOx layer and the acidity properties of the HZSM-5 zeolite over MnOx/HZSM-5 catalysts significantly promotes the catalytic oxidation of toluene.
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46

Chen, Shaohua, Hui Li, Yu Hao, Rui Chen y Tiehong Chen. "Porous Mn-based oxides for complete ethanol and toluene catalytic oxidation: the relationship between structure and performance". Catalysis Science & Technology 10, n.º 6 (2020): 1941–51. http://dx.doi.org/10.1039/c9cy02522g.

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SmMn2O5 exhibited a higher catalytic activity for catalytic oxidation of ethanol and toluene than SmMnO3, Mn3O4 and Mn2O3. Mn3+–Mn3+ dimers facilitate C–C bond cleavage.
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47

Kephart, Jonathan A., Zachary Hecht, Brooke N. Livesay, Indrani Bhowmick, Matthew P. Shores, V. Codrina Popescu, Navamoney Arulsamy y Elliott B. Hulley. "Self-assembly of an organometallic Fe9O6 cluster from aerobic oxidation of (tmeda)Fe(CH2tBu)2". Chemical Communications 56, n.º 37 (2020): 4994–97. http://dx.doi.org/10.1039/d0cc00011f.

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Aerobic oxidation of (tmeda)Fe(CH2tBu)2 in toluene or THF solution leads to the self-assembly of a magic-sized all-ferrous oxide cluster containing the Fe9O6 subunit and bearing organometallic and diamine ligands.
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48

Zhang, Lei, Zi-Yu Liu, Xuan Zhan, Li-Li Wang, Hui Wang y Hai-Yang Liu. "Photophysical properties of electron-deficient free-base corroles bearing meso-fluorophenyl substituents". Photochemical & Photobiological Sciences 14, n.º 5 (2015): 953–62. http://dx.doi.org/10.1039/c5pp00060b.

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The ultrafast photophysical behaviors of a series of meso-flurophenyl substituted electron-deficient free base corroles F0C, F5C, F10C and F15C in toluene have been investigated using femtosecond time resolved absorption spectroscopy and steady spectroscopies.
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49

Vasu, Vignesh, Joon-Sung Kim, Hyun-Seok Yu, William I. Bannerman, Mark E. Johnson y Alexandru D. Asandei. "Normal, ICAR and photomediated butadiene-ATRP with iron complexes". Polymer Chemistry 9, n.º 18 (2018): 2389–406. http://dx.doi.org/10.1039/c8py00463c.

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50

Wang, Yu, Limin Guo, Mengqiu Chen y Chuan Shi. "CoMnxOy nanosheets with molecular-scale homogeneity: an excellent catalyst for toluene combustion". Catalysis Science & Technology 8, n.º 2 (2018): 459–71. http://dx.doi.org/10.1039/c7cy01867c.

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The redox–precipitation technique yields molecularly dispersed CoMnxOy nanosheets with improved physicochemical properties compared to those obtained by a conventional co-precipitation method, leading to excellent catalytic activity in toluene combustion.
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