关键词云

成果统计

合作作者[TOP 5]

访问统计


  总访问量
 1384

  访问来源
    内部: 6
    外部: 1378
    国内: 1155
    国外: 229

  年访问量
 512

  访问来源
    内部: 0
    外部: 512
    国内: 473
    国外: 39

  月访问量
 70

  访问来源
    内部: 0
    外部: 70
    国内: 69
    国外: 1

访问量

访问量

1. MnCO_3微球的可控制备、表征及高温热分解行为 [343]
2. RF magnetron sputtering synthesis of carbon fibers/ZnO coaxial nan.. [311]
3. A novel method for removal of boron from aqueous solution using so.. [282]
4. Preparation of MnO2-Al2O3 adsorbent with large specific surface ar.. [254]
5. CO adsorption, dissociation and coupling formation mechanisms on F.. [240]
6. A solid-state electrochemical sensing platform based on a supramol.. [238]
7. 分子纳米层作为铜扩散阻挡层的研究进展(一):分子纳米层 [231]
8. 利用吸附技术提取盐湖卤水中锂的研究进展 [223]
9. Template-free synthesis of mesoporous gamma-alumina with tunable s.. [220]
10. Controllable synthesis of mesoporous alumina with large surface ar.. [220]
11. Characterization of Triazinedithiolsilane Polymeric Nanofilm Fabri.. [213]
12. 介孔氧化铝的可控制备及优异除氟性能 [212]
13. Design and facile one-step synthesis of FeWO4/Fe2O3 di-modified WO.. [209]
14. The polymeric nanofilm of triazinedithiolsilane fabricated by self.. [206]
15. CaO-Al_2O_3二元氧化物吸附剂的制备、表征及除氟性能研究 [206]
16. A multifunctional polymeric nanofilm with robust chemical performa.. [205]
17. 盐湖稀有元素吸附分离提取研究 [195]
18. 分子纳米层作为铜扩散阻挡层的研究进展(二):表征手段 [192]
19. The adsorption behavior and mechanism of Cr(VI) on 3D hierarchical.. [182]
20. Preparation of alpha-Fe2O3 hollow spheres, nanotubes, nanoplates a.. [182]
21. 氢氧化铝基锂吸附剂从卤水中吸附锂的机理 [177]
22. The polymeric nanofilm of triazinedithiolsilane capable of resisti.. [170]
23. MnO_2-Al_2O_3对氟离子的吸附性能及机理研究 [164]
24. 树枝状纤维形纳米球催化剂的研究进展 [164]
25. 铝基锂吸附剂从卤水中吸附提锂的研究及进展 [163]
26. Facile Synthesis of (110)-Plane-Exposed Au Microflowers as High Se.. [162]
27. Hydrothermal preparation of reduced graphene oxide-silver nanocomp.. [162]
28. Multi-Walled Carbon Nanotube-Assisted Electrodeposition of Silver .. [161]
29. GO-Al_2O_3二元复合氧化物的制备及其吸附性能 [160]
30. 全球锂资源综合评述 [147]
31. 硼酸/硼砂与多羟基化合物在水溶液中的反应:pH、电导率、Raman光谱研究 [147]
32. A glassy carbon electrode modified with N-doped carbon dots for im.. [146]
33. The performance and mechanism of recovering lithium on H4Ti5O12 ad.. [145]
34. Inhibition of two gastric cancer cell lines induced by fucoxanthin.. [144]
35. Mg~(2+)掺杂对H_(1.6)Mn_(1.6)O_4锂离子筛吸附性能的影响 [136]
36. Trace doping by fluoride and sulfur to enhance adsorption capacity.. [136]
37. Influence of the pH in Reactions of Boric Acid Borax with Simple H.. [129]
38. K-gradient doping to stabilize the spinel structure of Li(1.6)Mn(1.. [127]
39. Al-doped H2TiO3 ion sieve with enhanced Li+ adsorption performance [127]
40. Interactions between adsorbents and adsorbates in aqueous solution.. [126]
41. Design and facile one-step synthesis of FeWO4 Fe2O3 di-modified WO.. [126]
42. Chemical conversion based on the crystal facet effect of transitio.. [123]
43. Enabling highly structure stability and adsorption performances of.. [122]
44. 无机盐对κ-卡拉胶凝胶行为影响的机理 [118]
45. Amorphous Cr2WO6-Modified WO3 Nanowires with a Large Specific Surf.. [109]
46. Molecular and dissociative O-2 adsorption on the Cu2O(111) surface [108]
47. A rapid electrochemical sensor fabricated using silver ions and gr.. [106]
48. Corrosion resistance and wetting properties of silica-based superh.. [106]
49. A Durable PVDF PFOTES-SiO2 Superhydrophobic Coating on AZ31B Mg Al.. [105]
50. The adsorption behavior of lithium on spinel titanium oxide nanosh.. [100]
51. Extraction of lithium from salt lake brines by granulated adsorben.. [100]
52. Hydrothermal synthesis and adsorption behavior of H4Ti5O12 nanorod.. [96]
53. The role of surface hydrolysis of ferricyanide anions in crystal g.. [95]
54. Synthesis of FeAPO-5 molecular sieves with high iron contents via .. [94]
55. Removal of Fluoride by Graphene Oxide Alumina Nanocomposite Adsorb.. [87]
56. Rapid Simultaneous Screening and Detection of 12 Anticoagulant Rod.. [77]
57. Surface trace doping of Na enhancing structure stability and adsor.. [75]
58. Removal of Fluoride by Graphene Oxide/Alumina Nanocomposite Adsorb.. [71]
59. Amorphous Cr2WO6-Modified WO3 Nanowires with a Large Specific Surf.. [69]