1 |
SUN N, ZHANG Q P, YAO Y, et al. Improved hydrogen adsorption of 5A molecular sieves by enhancing its thermal conductivity[J]. Appl Phys Lett, 2018, 113(10): 103901.
|
2 |
KOH C A, SLONA E D, SUM A K, et al. Fundamentals and applications of gas hydrates[J]. Annu Rev Chem Biomol, 2011, 2: 237-257.
|
3 |
WANG Y, YIN K, FAN S, et al. The molecular insight into the “Zeolite-ice” as hydrogen storage material[J]. Energy, 2021, 217: 119406.
|
4 |
GOLLAKOTA A R K, VOLLI V, SHU C M. Progressive utilisation prospects of coal fly ash: a review[J]. Sci Total Environ, 2019, 672: 951-989.
|
5 |
PANDA L, DASH S. Characterization and utilization of coal fly ash: a review[J]. Emerg Mater Res, 2020, 9(3): 921-934.
|
6 |
VALEEV D, KUNILOVA I, ALPATOV A, et al. Complex utilisation of ekibastuz brown coal fly ash: iron & carbon separation and aluminum extraction[J]. J Clean Prod, 2019, 218: 192-201.
|
7 |
TIAN S, KANG Z, CHEN L, et al. Characterization of aluminosilicates in fly ashes with different melting points using 27Al magic-angel spinning nuclear magnetic resonance[J]. Energy Fuels, 2017, 31(9): 10068-10074.
|
8 |
CHEN X Y, CHEN R R, DING X, et al. Effect of phase formation on hydrogen storage properties in Ti-V-Mn alloys by zirconium substitution[J]. Energy, 2019, 166: 587-597.
|
9 |
MUTHUKUMAR P, MAIYA M P, MURTHY S S. Performance tests on a thermally operated hydrogen compressor[J]. Int J Hydrogen Energy, 2008, 33(1): 463-469.
|
10 |
LIU Q, HE P, QIAN X, et al. Enhanced CO2 adsorption performance on hierarchical porous ZSM-5 zeolite[J]. Energy Fuels, 2017, 31(12): 13933-13941.
|
11 |
SCHLAPBACH L, ZUTTEL A. Hydrogen-storage materials for mobile applications[J]. Nature, 2001, 414(6861): 353.
|
12 |
ZHOU M, WANG F, XIAO W, et al. The comparison of mesoporous HZSM-5 zeolite catalysts prepared by different mesoporous templates and their catalytic performance in the methanol to aromatics reaction[J]. React Kinet Mech Cat, 2016, 119(2): 699-713.
|
13 |
GAO J, ZHOU H, ZHANG F, et al. Effect of preparation method on the catalytic performance of HZSM-5 zeolite catalysts in the MTH reaction[J]. Materials, 2022, 15(6): 2206.
|
14 |
NULAHONG A S, LIU J X, HE N, et al. Catalytic conversion of n-butane over Au-Zn-modified nano-sized HZSM-5[J]. Chin J Catal, 2013, 34(6): 1262-1266.
|
15 |
KOSINOV N, WIJPKEMA A S G, USLAMIN E, et al. Confined carbon mediating dehydroaromatization of methane over Mo/ZSM-5[J]. Angew Chem Int Ed, 2018, 57(4): 1016-1020.
|
16 |
ROWNAGHI AA, HEDLUND J. Methanol to gasoline-range hydrocarbons: influence of nanocrystal size and microporosity on catalytic performance and product distribution of ZSM-5[J]. Ing Eng Chem Res, 2011, 50(21): 11872-11878.
|
17 |
LIU Y, LU J, YANG J, et al. Study on hydrogen storage mechanisms of mesoporous materials at low temperature and low pressure[J]. Mater Lett, 2018, 214: 91-94.
|
18 |
张光旭, 方园, 陈波, 等. 掺杂金属介孔分子筛MCM-48的合成及储氢研究[J]. 武汉理工大学学报, 2011, 33(11): 1-5.
|
|
ZHANG G X, FANG Y, CHEN B, et al. Synthesis and hydrogen storage of metal-doped mesoporous MCM-48[J]. J Wuhan Univ Technol, 2011, 33(11): 1-5.
|
19 |
KUMAR S, BERA R, DAS N, et al. Chitosan-based zeolite-Y and ZSM-5 porous biocomposites for H2 and CO2 storage[J]. Carbohyd Polym, 2020, 232: 115808.
|
20 |
SONG H, FAN H, GAO H, et al. Improving fly ash brightness with carbon and iron oxide removal[J]. Recycling, 2020, 5(1): 5.
|
21 |
LIU Y, HAN S, GUAN D, et al. Rapid green synthesis of ZSM-5 zeolite from leached illite clay[J]. Micropor Mesopor Mat, 2019, 280: 324-330 .
|
22 |
CHEN G, ZHANG C, JIA K, et al. The relationship between the preparation conditions and the crystallinity of ZSM-5 and the adsorption performance of sulfide in nature gas[J]. Energy Source Part A, 2021: 1-12.
|
23 |
KURKLU K, SAYILGAN E. Optimization of major elements recovery from thermal power plant fly ash using Taguchi experimental design[J]. Int J Environ Sci Te, 2020, 17: 2645-2654.
|
24 |
VALEEV D, MIKHAILOVA A, ATMADZHIDI A. Kinetics of iron extraction from coal fly ash by hydrochloric acid leaching[J]. Metals-Basel, 2018, 8(7): 533.
|
25 |
XIONG G, MENG F, LIU J, et al. Rapid hydrothermal synthesis of hierarchical ZSM-5/beta composite zeolites[J]. Rsc Adv, 2021, 11(35): 21235-21247.
|
26 |
JAGIELLO J, KENVIN J. NLDFT adsorption models for zeolite porosity analysis with particular focus on ultra-microporous zeolites using O2 and H2[J]. J Colloid Interf Sci, 2022, 625: 178-186.
|
27 |
LIU Y, GUO J, XIAO Z, et al. Adsorption kinetics and isotherms of berberine by ZSM-5 molecular sieves from Cortex Phellodendron[J]. React Kinet Mech Cat, 2020, 129: 491-504.
|
28 |
LI T. The dynamic change of pore structure for the low-rank coal with various pretreatment temperatures: a case study from Southwestern Ordos Basin[J]. Geofluids, 2020, 2020: 1-13.
|
29 |
BORODIN D, RAHINOV I, SHIRHATTI P R, et al. Following the microscopic pathway to adsorption through chemisorption and physisorption wells[J]. Science, 2020, 369(6510): 1461-1465.
|
30 |
GEORGIADIS A G, CHARISIOU N D, GABER S, et al. Adsorption of hydrogen sulfide at low temperatures using an industrial molecular sieve: an experimental and theoretical study[J]. ACS Omega, 2021, 6(23): 14774-14787.
|