| [1] |
Yedala N, Aghalayam P. 2022. A methodology for structure dependent global kinetic models: application to the selective catalytic reduction of NO by hydrocarbons. |
| [2] |
Wu YW, Zhou XY, Zhou JL, Hu Z, Cai Q, et al. 2023. A comprehensive review of the heavy metal issues regarding commercial vanadium-titanium-based SCR catalyst. |
| [3] |
Kapkowski M, Siudyga T, Lach D, Kocot K, Matuła I, et al. 2024. Enhanced deNOx catalysis: induction-heating-catalysis-ready 3D stable Ni supported metal combinations. |
| [4] |
Sun Z, Liao Y, Zhang Y, Sun S, Kan Q, et al. 2025. Sustainable carbon materials in environmental and energy applications. |
| [5] |
HeLian Y, Cui S, Ma X, Wang Y. 2022. The effect of tourmaline on the denitration performance of MnOx/TiO2 catalysts and DFT calculation. |
| [6] |
Jiang L, Jiang X, Liu W, Wu H, Hu G, et al. 2021. Comparative study on the physicochemical properties and de-NOx performance of waste bamboo-derived low-temperature NH3-SCR catalysts. |
| [7] |
Sullivan JA, Burch R, Shestov AA. 2000. Transient techniques in the study of lean-NOx reduction over supported Pt catalysts. |
| [8] |
Qiu T, Cao W, Xie K, Ahmad F, Zhao W, et al. 2025. CO2 capture performances of H3PO4/KOH activated microwave pyrolyzed porous biochar. |
| [9] |
Nan DH, Zhang R, Yu JH, Niu Q, Liu HC, et al. 2025. Catalytic pyrolysis of waste epoxy resin using activated carbon to produce stable phenolic compounds. |
| [10] |
Nan DH, Zhang CB, Niu Q, Feng SY, Hu B, et al. 2025. Nitrogen-doped hydrothermal carbon as a catalyst for selective alkoxyphenol production from pine pyrolysis. |
| [11] |
Xia Y, Yang Y, Chen Z, Li M, Lan Z, et al. 2023. Boosting the low-temperature NH3-SCR performance via metals co-doping with inequality Mn/Ce ratios in the carbon-based catalyst prepared by Cr-containing leather waste. |
| [12] |
Jia C, Li A, Shang H, Jiang Y, Zhang J, et al. 2025. Rapid self-heating synthesis of Fe/C composites for molecular oxygen activation toward organic contaminant degradation. |
| [13] |
Wang J, He N, Zhang Y, Chang Y, Liu C, et al. 2024. Enhancing the sulfur resistance of Mn/HZSM-5 catalyst for selective catalytic reduction of NOx by coupling the adsorbent. |
| [14] |
Kostyniuk A, Likozar B. 2025. State-of-the-art advancements in the thermocatalytic conversion of CO2 into ethanol and higher alcohols: recent progress in catalyst development and reaction mechanisms. |
| [15] |
Salami R, Zeng Y, Han X, Rohani S, Zheng Y. 2025. Exploring catalyst developments in heterogeneous CO2 hydrogenation to methanol and ethanol: a journey through reaction pathways. |
| [16] |
Amini V, Gharahshiran VS, Yousefpour M. 2025. Hydrogen production via ethanol steam reforming over yttrium-modified Co-Ni catalysts: the role of promoter. |
| [17] |
Ling X, Wang G, Han J, Wang L, Yu J, et al. 2025. Solvent effects on the preparation of CuO-ZnO-ZrO2-Al2O3 catalyst by citrate complexing method for CO2 hydrogenation to methanol. |
| [18] |
Liu L, Wang B, Yao X, Yang L, Jiang W, et al. 2021. Highly efficient MnOx/biochar catalysts obtained by air oxidation for low-temperature NH3-SCR of NO. |
| [19] |
Liu L, Li Q, Wei Q, Mei Y, Chen W, et al. 2026. Synthesis of a novel carbon microsphere with multi-cavity mesoporous structure for CO2 adsorption. |
| [20] |
Bi T, Zhang J, Li J, Cui W, Lin Q. 2025. A CoS2-loaded N-doped ultrathin-wall mesoporous carbon with three-dimensional fluffy network structure as desirable sulfur-loading host for lithium-sulfur battery. |
| [21] |
Cai T, Liu Z, Yuan J, Xu P, Zhao K, et al. 2021. The structural evolution of MnOx with calcination temperature and their catalytic performance for propane total oxidation. |
| [22] |
Huang G, Geng Q, Kang W, Liu Y, Li Y, et al. 2019. Hierarchical porous carbon with optimized mesopore structure and nitrogen doping for supercapacitor electrodes. |
| [23] |
Lou X, Liu P, Li J, Li Z, He K. 2014. Effects of calcination temperature on Mn species and catalytic activities of Mn/ZSM-5 catalyst for selective catalytic reduction of NO with ammonia. |
| [24] |
Thyssen VV, Sartore DM, Assaf EM. 2019. Effect of preparation method on the performance of Ni/MgO−SiO2 catalysts for glycerol steam reforming. |
| [25] |
Zhang Y, Liu Y, Yang G, Sun S, Tsubaki N. 2007. Effects of impregnation solvent on Co/SiO2 catalyst for Fischer-Tropsch synthesis: a highly active and stable catalyst with bimodal sized cobalt particles. |
| [26] |
Olivares ACV, Gomez MF, Barroso MN, Abello MC. 2018. Ni-supported catalysts for ethanol steam reforming: effect of the solvent and metallic precursor in catalyst preparation. |
| [27] |
Xu Z, Li M, Shen G, Chen Y, Lu D, et al. 2023. Solvent effects in the preparation of catalysts using activated carbon as a carrier. |
| [28] |
Huo P, Zhang Y, Zhang L, Yang M, Wei W, et al. 2021. Insight into the adsorption process of ethanol and water on the pore structure and surface chemistry properties engineered activated carbon fibers. |
| [29] |
Tahery R, Khosharay S. 2017. Surface tension of binary mixtures of dimethylsulfoxide+methanol, ethanol and, propanol between 293.15 and 308.15 K. |
| [30] |
Grigorieva OV, Grigoriev DO, Kovalchuk NM, Vollhardt D. 2005. Auto-oscillation of surface tension: heptanol in water and water/ethanol systems. |
| [31] |
Liu M, Wang Q, Zhao Y, Zhao B, Li H, et al. 2023. Enhanced activity and SO2 tolerance in low-temperature NH3-SCR of NOx over MnCr catalyst by hetero-oxide modification. |
| [32] |
Boningari T, Ettireddy PR, Somogyvari A, Liu Y, Vorontsov A, et al. 2015. Influence of elevated surface texture hydrated titania on Ce-doped Mn/TiO2 catalysts for the low-temperature SCR of NOx under oxygen-rich conditions. |
| [33] |
Guan L, Pan L, Peng T, Gao C, Zhao W, et al. 2019. Synthesis of biomass-derived nitrogen-doped porous carbon nanosheests for high-performance supercapacitors. |
| [34] |
Qi Y, Shan X, Wang M, Hu D, Song Y, et al. 2020. Study on low-temperature SCR denitration mechanisms of manganese-based catalysts with different carriers. |
| [35] |
Fang N, Guo J, Shu S, Luo H, Chu Y, et al. 2017. Enhancement of low-temperature activity and sulfur resistance of Fe0.3Mn0.5Zr0.2 catalyst for NO removal by NH3-SCR. |
| [36] |
Madkhli AY. 2024. Simultaneous oxidation of Mn2+ to Mn4+ by devitrification of transparent glassy Na2Ge4O9:Mn. |
| [37] |
Huang B, Shi Z, Yang Z, Dai M, Wen Z, et al. 2022. Mechanism of CO selective catalytic reduction denitration on Fe–Mn/AC catalysts at medium and low temperatures under oxygen atmosphere. |
| [38] |
Wu J, Zhang J, Wang Z, Qian G, Zhang TY. 2023. Water-tolerant and anti-dust CeCo-MnO2 membrane catalysts for low temperature selective catalytic reduction of nitrogen oxides. |