陈小明 教授 博士 广东省 研究领域: 精细化工 研究方向: 功能配位化学与晶体工程研究,特别是配位聚合物、金属有机框架材料等的设计与合成、结构与功能(吸附与分离、催化、光电磁、传感)研究,以及含能分子晶体研究。 所在单位: 中山大学

基本信息

所在单位:
中山大学
机构细分:
化学学院
单位类型:
高等院校
职务:
教授
职称:
教授
最高学历:
博士
教育经历:
1983年获中山大学理学学士学位;
1986年获中山大学理学硕士学位;
1992年获香港中文大学哲学博士学位。
工作经历:
1986年至1989年在中山医科大学生物化学教研室工作,历任助教、讲师
1992年7月起在中山大学化学与化学工程学院工作
1993年12月晋升副教授,1995年1月晋升教授
2006年至2020年担任生物无机与合成化学教育部重点实验室主任
2022年担任化学与精细化工广东省实验室主任
专家介绍:
在功能配合物和配位聚合物(包括金属-有机框架化合物MOF)的设计与合成、结构分析和功能性质研究等方面取得了一些开拓性和系统性的研究成果。1)提出了构筑微孔配位聚合物金属—咪唑框架的取代基结构调控方法,在国际上首次合成具有天然分子筛结构、永久孔洞的金属—咪唑框架等材料;构筑了一系列具有气体与有机分子吸附、分离、传感和催化功能的微孔MOF。2)发现了一系列新型原位金属/配体反应,发现了Gillard机理的关键中间体的结构证据,并揭示了若干复杂反应过程,在配位化学与有机合成化学之间搭起新的桥梁。3)在磁、电功能配(簇)合物研究方面,首次实现了“星”晶格几何阻挫磁体,构筑了新颖的单链磁体、单分子磁体,以及铁电、介电性能的分子固体。
专家荣誉:
2007年  国家自然科学奖二等奖(第一完成人):配合物控制合成与晶体工程方法基础研究
2008年  汤森路透卓越研究奖 (Thomson Reuters   Research Fronts Award)
2012年  发展中国家科学院TWAS化学奖
2012年  广东省科学技术奖一等奖(第一完成人): “微孔与磁性配位聚合物研究”
2014年  汤森路透高被引用科学家 (Thomson Reuters Highly Cited Researcher)
2015年  汤森路透高被引用科学家 (Thomson Reuters Highly Cited Researcher)
2016年  汤森路透高被引用科学家 (Thomson Reuters Highly Cited Researcher)
2017年  科睿唯安高被引用科学家 (Clarivate Highly Cited Researcher)
2017年  广东省科学技术奖突出贡献奖
2018年    国家级教学成果二等奖(第三获得者)
2018年    科睿唯安高被引用科学家(Clarivate Highly Cited Researcher)
2019年    科睿唯安高被引用科学家(Clarivate Highly Cited Researcher)
2019年    第34届花剌子模国际科学奖(34th Khwarizmi International Award)
2020年    日本配位化学学会国际奖(International Award of Japan Society of Coordination Chemistry (JSCC)
2020年    科睿唯安高被引用科学家(Clarivate Highly Cited Researcher)
2021年    科睿唯安高被引用科学家(Clarivate Highly Cited Researcher)

科研能力

研究领域:
精细化工
研究方向:
功能配位化学与晶体工程研究,特别是配位聚合物、金属有机框架材料等的设计与合成、结构与功能(吸附与分离、催化、光电磁、传感)研究,以及含能分子晶体研究。
中文标签:
荧光性质;晶体结构;金属羧酸盐;大黄素;弯曲型二酸;首乌藤;配位聚合物;CsCl;反铁磁;d10金属配合物
英文标签:
Metal-organic Frameworks;Coordination Chemistry;Crystal Structure;Co2 Capture;Metal-organic Framework;Copper;Co2 Reduction;Magnetic Properties;Coordination Polymers;High-spin Transition Metal Complexes
相关文献:
1. Self-assembled three-dimensional coordination polymers with unusual ligand-unsupported Ag-Ag bonds: Syntheses, structures and luminescent properties, Tong, M.-L.; Chen, X.-M.; Ye, B.-H.; Ji, L.-N. Angew. Chem. Int. Ed. 1999, 38, 2237-2240. 

2. Hydroxylation of N-heterocycle ligands observed in two unusual mixed-valence CuI-CuII complexes, Zhang, X.-M.; Tong, M.-L.; Chen, X.-M., Angew. Chem. Int. Ed. 2002, 41, 1029-1031. 

3. Copper(I) 1,2,4-triazolates and related complexes: Studies of the solvothermal ligand reactions, network topologies, and photoluminescence properties, Zhang, J.-P.; Lin, Y.-Y.; Huang, X.-C.; Chen, X.-M., J. Am. Chem. Soc. 2005, 127, 5495-5506.

4. Ligand-directed strategy for zeolite-type metal-organic frameworks: Zinc(II) imidazolates with unusual zeolitic topologies, Huang, X.-C.; Lin, Y.-Y.; Zhang, J.-P.; Chen, X.-M., Angew. Chem. Int. Ed. 2006, 45, 1557-1559. 

5. A “star” antiferromagnet: A polymeric iron(III) acetate exhibiting the coexistence of spin-frustration and long-range magnetic order, Zheng, Y.-Z.; Tong, M.-L.; Xue, W.; Zhang, W.-X.; Chen, X.-M.; Grandjean, F.; Long, G. J., Angew. Chem. Int. Ed. 2007, 46, 6076-6080.

6. Exceptional framework flexibility and sorption behavior of a multifunctional porous cuprous triazolate framework, Zhang, J.-P.; Chen, X.-M., J. Am. Chem. Soc. 2008, 130, 6010–6017.

7. (Review Article) Metal azolate frameworks: from crystal engineering to functional materials

Zhang, J.-P.; Zhang, Y.-B.; Lin, J.-B.; Chen, X.-M., Chem. Rev. 2012, 112, 1001–1033.

8. Controlling guest conformation for efficient purification of 1,3-butadiene, Liao, Pei-Qin; Huang, Ning-Yu; Zhang, Wei-Xiong; Zhang, Jie-Peng; Chen, Xiao-Ming, Science, 2017, 356, 1193-1196.

9. (Invited Review) Controlling flexibility of metal–organic frameworks, Zhang, Jie-Peng; Zhou, Hao-Long; Zhou, Dong-Dong; Liao, Pei-Qin; Chen, Xiao-Ming, Natl. Sci. Rev. 2018, 5, 907–919.
论文著作:
1. Polynuclear CuII12-MIII6 (M = Y, Nd or Gd) complexes encapsulating a ClO4– anion:
[Cu12M6(OH)24(pyb)12(H2O)18(ClO4)](ClO4)17·nH2O (pyb = pyridine betaine)
Chen, X.-M.; Aubin, S.M.J.; Wu, Y.-L.; Yang, Y.-S.; Mak, T.C.W.; Hendrickson, D.N., J. Am. Chem. Soc. 1995, 117, 9600-9601. PDF
2. Self-assembled three-dimensional coordination polymers with unusual ligand-unsupported Ag-Ag bonds: Syntheses, structures and luminescent properties
Tong, M.-L.; Chen, X.-M.; Ye, B.-H.; Ji, L.-N. Angew. Chem. Int. Ed. 1999, 38, 2237-2240. PDF
3. Hydroxylation of N-heterocycle ligands observed in two unusual mixed-valence CuI-CuII complexes
Zhang, X.-M.; Tong, M.-L.; Chen, X.-M., Angew. Chem. Int. Ed. 2002, 41, 1029-1031. PDF
4. A novel, highly electrical conducting, single-component molecular material, [Ag2(ophen)2] (Hophen = 1H-[1,10]phenanthrolin-2-one)
Zheng, S.-L.; Zhang, J.-P.; Wong, W.-T.; Chen, X.-M., J. Am. Chem. Soc. 2003, 125, 6882-6883. PDF
5. (Review Article) Silver(I)-hexamethylenetetramine molecular architectures: From self-assembly to designed assembly
Zheng, S.-L.; Tong, M.-L.; Chen, X.-M., Coord. Chem. Rev. 2003, 246, 185-202. PDF
6. Two unprecedented 3-connected three-dimensional networks of copper(I) triazolates: in-situ formation of ligands by cycloaddition of nitriles and ammonia
Zhang, J.-P.; Zheng, S.-L.; Huang, X.-C.; Chen, X.-M., Angew. Chem. Int. Ed. 2004, 43, 206-209.
7. A new route to supramolecular isomers via molecular templating: nanosized molecular polygons of copper(I) 2-methylimidazolates
Huang, X.-C.; Zhang, J.-P.; Chen, X.-M., J. Am. Chem. Soc. 2004, 126, 13218-13219. PDF
8. (Review Article) Metal-organic molecular architectures with 2,2’-bipyridyl-like and carboxylate ligands
Ye, B.-H.; Tong, M.-L.; Chen, X.-M., Coord. Chem. Rev. 2005, 249, 545–565. PDF
9. Copper(I) 1,2,4-triazolates and related complexes: Studies of the solvothermal ligand reactions, network topologies, and photoluminescence properties
Zhang, J.-P.; Lin, Y.-Y.; Huang, X.-C.; Chen, X.-M., J. Am. Chem. Soc. 2005, 127, 5495-5506. PDF
10. Spin-canting and metamagnetism observed in a unique 3D homometallic molecular material constructed by interpenetration of two kinds of cobalt(II) coordination polymer sheets
Zeng, M.-H.; Zhang, W.-X.; Sun, X.-Z.; Chen, X.-M., Angew. Chem. Int. Ed. 2005, 44, 3079-3082. PDF
11. Temperature- or guest-induced drastic single-crystal-to-single-crystal transformations of a nanoporous coordination polymer
Zhang, J.-P.; Lin, Y.-Y.; Zhang, W.-X.; Chen, X.-M., J. Am. Chem. Soc. 2005, 127, 14162-14163. PDF
12. Ligand-directed strategy for zeolite-type metal-organic frameworks: Zinc(II) imidazolates with unusual zeolitic topologies
Huang, X.-C.; Lin, Y.-Y.; Zhang, J.-P.; Chen, X.-M., Angew. Chem. Int. Ed. 2006, 45, 1557-1559. PDF
13. Assembling “magnetic nanowires” into network: A layered Co(II)-carboxylate coordination polymer exhibiting single-chain-magnet behavior
Zheng, Y.-Z.; Tong, M.-L.; Zhang, W.-X.; Chen, X.-M., Angew. Chem. Int. Ed. 2006, 45, 6310-6314. PDF
14. (Review Article) Solvothermal in-situ metal/ligand reactions: A new bridge between coordination chemistry and organic synthetic chemistry
Chen, X.-M.; Tong, M.-L., Acc. Chem. Res. 2007, 40, 162-170. PDF
15. A dynamic porous magnet exhibiting reversible guest-induced magnetic behavior modulation
Cheng, X.-N.; Zhang, W.-X.; Lin, Y.-Y.; Zheng, Y.-Z.; Chen, X.-M., Adv. Mater. 2007, 19, 1494–1498. PDF
16. A “star” antiferromagnet: A polymeric iron(III) acetate exhibiting the coexistence of spin-frustration and long-range magnetic order
Zheng, Y.-Z.; Tong, M.-L.; Xue, W.; Zhang, W.-X.; Chen, X.-M.; Grandjean, F.; Long, G. J., Angew. Chem. Int. Ed. 2007, 46, 6076-6080. (Highlighted in Nature China) PDF
17. Single-crystal-to-single-crystal transformation from ferromagnetic discrete molecules to a spin-canting antiferromagnetic layer
Cheng, X.-N.; Zhang, W.-X.; Chen, X.-M., J. Am. Chem. Soc. 2007, 129, 15738-15739. PDF
18. Néel temperature enhanced by increasing the in-plane magnetic correlation in layered inorganic-organic hybrid materials
Zheng, Y.-Z.; Xue, W.; Zheng, S.-L.; Tong, M.-L.; Chen, X.-M., Adv. Mater. 2008, 20, 1534–1538. PDF
19. Exceptional framework flexibility and sorption behavior of a multifunctional porous cuprous triazolate framework
Zhang, J.-P.; Chen, X.-M., J. Am. Chem. Soc. 2008, 130, 6010–6017; PDF
20. Optimized acetylene/carbon dioxide sorption in a dynamic porous crystal
Zhang, J.-P.; Chen, X.-M., J. Am. Chem. Soc. 2009, 131, 5516–5521. (Highlighted in Nature China) Link.
21. (Review Article) Supramolecular isomerism in coordination polymers
Zhang, J.-P.; Huang, X.-C.; Chen, X.-M., Chem. Soc. Rev. 2009, 38, 2385–2396. Link
22. A highly-connected porous coordination polymer with interesting channel structure and sorption properties
Zhang, Y.-B.; Zhang, W.-X.; Feng, F.-Y.; Zhang, J.-P.; Chen, X.-M., Angew. Chem. Int. Ed. 2009, 48, 5287-5290. Link.
23. Non-classical active site for enhanced gas sorption in porous coordination polymer
Lin, J.-B.; Zhang, J.-P.; Chen, X.-M., J. Am. Chem. Soc. 2010, 132, 6654–6656. Link
24. Pore surface tailored SOD-type metal-organic zeolites
Zhang, J.-P.; Zhu, A.-X.; Lin, R.-B.; Qi, X.-L.; Chen, X.-M., Adv. Mater. 2011, 22, 1268–1271. PDF
25. A flexible metal azolate framework with drastic luminescence response toward solvent vapors and carbon dioxide
Qi, X.-L.; Lin, R.-B.; Chen, Q.; Lin, J.-B.; Zhang, J.-P.; Chen, X.-M., Chem. Sci. 2011, 2, 2214-2218. Link.
26. Geometry analysis and systematic synthesis of isoreticular open frameworks with a unique topology
Zhang, Y.-B.; Zhou, H.-L.; Lin, R.-B.; Zhang, C.; Lin, J.-B.; Zhang, J.-P.; Chen, X.-M., Nature Commun. 2012, 3, 642. DOI: 10.1038/ncomms1654. Link
27. (Review Article) Metal azolate frameworks: from crystal engineering to functional materials
Zhang, J.-P.; Zhang, Y.-B.; Lin, J.-B.; Chen, X.-M., Chem. Rev. 2012, 112, 1001–1033. Link
28. Strong and dynamic CO2 sorption in a flexible porous framework possessing guest chelating claws
Liao, P.-Q.; Zhou, D.-D.; Zhu, A.-X.; Jiang, L.; Lin, R.-B.; Zhang, J.-P.; Chen, X.-M., J. Am. Chem. Soc. 2012, 134, 17380-17383. Link
29. A porous coordination framework for highly sensitive and selective solid-phase microextraction of non-polar volatile organic compounds
He, C.-T.; Tian, J.-Y.; Liu, S.-Y.; Ouyang, G.F.; Zhang, J.-P.; Chen, X.-M., Chem. Sci. 2013, 4, 351–356. Link
30. Turning on the flexibility of isoreticular porous coordination frameworks for drastically tunable framework breathing and thermal expansion
Wei, Y.-S.; Chen, K.-J.; Liao, P.-Q.; Zhu, B.-Y.; Lin, R.-B.; Zhou, H.-L.; Wang, B.-Y.; Xue, W.; Zhang, J.-P.; Chen, X.-M., Chem. Sci. 2013, 4, 1539-1546. Link
31. Direct visualization of a guest-triggered crystal deformation based on a flexible ultramicroporous framework
Zhou, H.-L.; Lin, R.-B.; He, C.-T.; Zhang, Y.-B.; Feng, N.-D.; Wang, Q.; Deng, F.; Zhang, J.-P.; Chen, X.-M., Nature Commun. 2013, 4, 2534. DOI: 10.1038 /ncomms3534. Link
32. A noble-metal-free porous coordination framework with exceptional sensing efficiency for oxygen
Lin, R.-B.; Li, F.; Liu, S.-Y.; Qi, X.-L.; Zhang, J.-P.; Chen, X.-M., Angew. Chem. Int. Ed. 2013, 52, 13429-13433. Link
33. (Invited Review) Single-crystal X-ray diffraction studies on structural transformations of porous coordination polymers
Zhang, J.-P.; Liao, P.-Q.; Zhou, H.-L.; Lin, R.-B.; Chen, X.-M., Chem. Soc. Rev. 2014, 43, 5789-5814. DOI: 10.1039/C4CS00129J. Link
34. Porous Cu(I) triazolate framework and derived hybrid membrane with exceptionally high sensing efficiency for gaseous oxygen
Liu, S.-Y.; Qi, X.-L.; Lin, R.-B.; Cheng, X.-N.; Liao, P.-Q.; Zhang, J.-P.; Chen, X.-M., Adv. Funct. Mater. 2014, 24, 5866–5872. DOI: 10.1002/adfm.201401125. Link
35. Visualizing the distinctly different crystal-to-crystal structural dynamism and sorption behaviors of interpenetration-direction isomeric coordination networks
He, Chun-Ting; Liao, Pei-Qin; Zhou, Dong-Dong; Wang, Bao-Ying; Zhang, Wei-Xiong; Zhang, Jie-Peng; Chen, Xiao-Ming Chen, Chem. Sci. 2014, 5, 4755. DOI: 10.1039/C4SC01505C. Link
36. Switchable guest molecular dynamics in a perovskite-like coordination polymer toward sensitively thermal-responsive dielectric materials
Du, Zi-Yi; Xu, Ting-Ting; Huang, Bo; Su, Yu-Jun; Xue, Wei; He, Chun-Ting; Zhang, Wei-Xiong; Chen, Xiao-Ming; Angew. Chem. Int. Ed. 2015, 54, 914 –918. DOI: 10.1002/anie.201408491. Link
37. Monodentate hydroxide as a super strong yet reversible active site for CO2 capture from high-humidity flue gas
Liao, Pei-Qin; Zhou, Dong-Dong; Liu, Si-Yang; He, Chun-Ting; Zhang, Wei-Xiong; Jie-Peng Zhang, and Xiao-Ming Chen, Energy Environ. Sci. 2015, 8, 1011-1016. DOI: 10.1039/C4EE02717E. Link
38. Self-catalyzed aerobic oxidization of organic linker in porous crystal for on-demand regulation of sorption behaviors
Liao, P.-Q.; Zhu, A.-X.; Zhang, W.-X.; Zhang, J.-P.; Chen, X.-M., Nature Comm. 2015, 6, 6350. doi:10.1038/ncomms7350. Link
39. Tuning fluorocarbon adsorption on isoreticular metal-organic frameworks for heat transformation applications
Lin, Rui-Biao; Li, Tai-Yang; Zhou, Hao-Long; He, Chun-Ting; Zhang, Jie-Peng; Chen, Xiao-Ming, Chem. Sci. 2015, 6, 2516-2521. DOI: 10.1039/C4SC03985H. Link
40. Supramolecular-jack-like guest in ultramicroporous crystal for exceptional thermal expansion behavior
Zhou, Hao-Long; Zhang, Yue-Biao; Zhang, J.-P.; Chen, X.-M., Nature Comm. 2015, 6, 6917. DOI: doi: 10.1038/ncomms7917. Link
41. (Invited Review) Metal cluster-based functional porous coordination polymers
Wei-Xiong Zhang, Liao, Pei-Qin; Rui-Biao Lin, Yong-Sheng Wei, Ming-Hua Zeng, Xiao-Ming Chen, Coord. Chem. Rev. 2015, 293–294, 263–278. doi: 10.1016/j.ccr.2014.12.009. Link
42. Exceptional hydrophobicity of a large-pore metal-organic zeolite
Chun-Ting He, Jiang, Lu; Ye, Zi-Ming; Krishna, Rajamani; Zhong, Zhen-Song; Liao, Pei-Qin; Xu, Jianqiao; Ouyang, Gangfeng; Zhang, Jie-Peng; Chen, Xiao-Ming, J. Am. Chem. Soc. 2015, 137, 7217–7223. Link
43. Coordination templated [2+2+2] cyclotrimerization in porous crystal
Wei,Yong-Sheng; Zhang, Mei; Liao, Pei-Qin; Lin, Rui-Biao; Li, Tai-Yang, Shao, Guang; Zhang, Jie-Peng; Chen, Xiao-Ming, Nature Commun. 2015, 6, 8348. DOI: 10.1038/ncomms9348. Link
44. Efficient purification of ethene by ethane-trapping metal-organic framework 
Liao, Pei-Qin; Zhang, Wei-Xiong; Zhang, Jie-Peng; Chen, Xiao-Ming, Nature Commun. 2015, 6, 8697. doi:10.1038/ncomms9697. Link
45. (Hot paper) A metal-organic framework with pore size/shape suitable for strong binding and close packing of methane
Lin, Jiao-Min; He, Chun-Ting; Liu, Yan; Liao, Pei-Qin; Zhou, Dong-Dong; Zhang, Jie-Peng; Chen, Xiao-Ming, Angew. Chem. Int. Ed. 2016, 55, 4674–4678. DOI: 10.1002/anie.201511006. Link
46. An alkaline-stable, metal-hydroxide mimicking metal-organic framework for efficient electrocatalytic oxygen evolution reaction
Lu, Xue-Feng; Liao, Pei-Qin (co-first author); Wang, Jia-Wei; Wu, Jun-Xi; Chen, Xun-Wei; He, Chun-Ting; Zhang, Jie-Peng; Li, Gao-Ren; Chen, Xiao-Ming, J. Am. Chem. Soc. 2016, 138, 8336–8339. DOI: 10.1021/jacs.6b03125. Link
47. Molecular dynamics of flexible polar cation in variable confined space: toward exceptional two-step nonlinear optical switches
Xu, Wei-Jian; He, Chun-Ting; Chen, Shao-Li; Huang, Rui-Kang; Lin, Rui-Biao; Xue, Wei; Luo, Junhua; Zhang, Wei-Xiong; Chen, Xiao-Ming; Adv. Mater., 2016, 28, 5886–5890. DOI: 10.1002/adma.201600895. Link
48. (Hot paper) Tuning pore size in diamondoid and square lattice networks for size-selective sieving of CO2
Kai-Jie Chen, David G. Madden, Tony Pham, Katherine A. Forrest, Amrit Kumar, Qing-Yuan Yang, Wei Xue, Brian Space, John J. Perry IV, Jie-Peng Zhang, Xiao-Ming Chen and Michael J. Zaworotko, Angew. Chem. Int. Ed. 2016, 55, 10268–10272. DOI: 10.1002/anie.201603934. Link
49. Putting ultrahigh concentration of amine groups into a metal–organic framework for CO2 capture at low pressures
Liao, Pei-Qin; Chen, Xun-Wei; Liu, Si-Yang; Li, Xu-Yu; Xu, Yan-Tong; Tang, Minni; Rui, Zebao; Ji, Hongbing; Zhang, Jie-Peng; Chen, Xiao-Ming; Chem. Sci. 2016, 7, 6528-6533. DOI:  10.1039/C6SC00836D. Link
50. Flexible, luminescent metal-organic frameworks showing nonlinear/synergistic solid-solution effects on porosity and sensitivity
Liu, Si-Yang; Zhou, Dong-Dong; He, Chun-Ting; Liao, Pei-Qin; Cheng, Xiao-Ning; Xu, Yan-Tong; Ye, Jia-Wen; Zhang, Jie-Peng; Chen, Xiao-Ming, Angew. Chem. Int. Ed. 2016, 55, 6021–16025. DOI: 10.1002/anie.201608439. Link
51. Modular and stepwise synthesis of a hybrid metal-organic framework for efficient electrocatalytic oxygen evolution
Shen, Jian-Qiang; Liao, Pei-Qin; Zhou, Dong-Dong; He, Chun-Ting; Wu, Jun-Xi; Zhang, Wei-Xiong; Zhang, Jie-Peng; Chen, Xiao-Ming, J. Am. Chem. Soc. 2017, 139, 1778–1781. DOI: 10.1021/jacs.6b12353. Link
52. A cage-confinement pyrolysis route to ultrasmall tungsten carbide nanoparticles for efficient hydrogen evolution
Xu, Yan-Tong; Xiao, Xiaofen; Ye, Zi-Ming; Zhao, Shenlong; Shen, Rongan; He, Chun-Ting; Zhang, Jie-Peng; Li, Yadong; Chen, Xiao-Ming, J. Am. Chem. Soc. 2017, 139, 139, 5285–5288. DOI: 10.1021/jacs.7b00165. Link
53. A molecular perovskite with switchable coordination bonds for high-temperature multi-axial ferroelectrics
Xu, Wei-Jian; Li, Peng-Fei; Tang, Yuan-Yuan; Zhang, Wei-Xiong; Xiong, Ren-Gen; Chen, Xiao-Ming, J. Am. Chem. Soc. 2017, 139, 6369–6375. DOI: 10.1021/jacs.7b01334. Link
54. Controlling guest conformation for efficient purification of 1,3-butadiene
Liao, Pei-Qin; Huang, Ning-Yu; Zhang, Wei-Xiong; Zhang, Jie-Peng; Chen, Xiao-Ming, Science, 2017, 356, 1193-1196. DOI: 10.1126/science.aam7232. Link
55. A crystalline supramolecular gyroscope with a water molecule as an ultra-small polar rotator modulated by charge-assisted hydrogen bonds
Wang, Li; He, Chun-Ting; Zeng, Ying; Ji, Cheng-Min; Luo, Jun-Hua; Du, Zi-Yi; Zhang, Wei-Xiong;  Chen, Xiao-Ming, J. Am. Chem. Soc. 2017, 139, 8086–8089. DOI: 10.1021/jacs.7b02981. Link
56. Hyperfine adjustment of flexible pore-surface pockets enables smart recognitions of gas size and quadrupole moment
He, Chun-Ting; Ye, Zi-Ming; Xu, Yan-Tong; Zhou, Dong-Dong; Zhou, Hao-Long; Chen, Da; Zhang, Jie-Peng; Chen, Xiao-Ming, Chem. Sci. 2017, 8, 7560–7565. DOI: 10.1039/c7sc03067c. Link
57. Hydroxide ligands cooperate with catalytic centers in metal-organic frameworks for efficient photocatalytic CO2 reduction
Wang, Yu; Huang, Ning-Yu; Shen, Jian-Qiang; Liao, Pei-Qin; Chen, Xiao-Ming; Zhang, Jie-Peng; J. Am. Chem. Soc. 2018, 140, 38–41. Link
58. Mesoporous metal-organic frameworks with exceptionally high working capacities for adsorption heat transformation
Mo, Zong-Wen; Zhou, Hao-Long; Dong-Dong; Zhou, Rui-Biao Lin, Liao, Pei-Qin; He, Chun-Ting; Zhang, Wei-Xiong; Chen, Xiao-Ming, Zhang, Jie-Peng; Adv. Mater. 2018, 30, 1704350.  adma.201704350. Link
59. Molecular dynamics, phase transition and frequency-tuned dielectric switch of an ionic co-crystal
Liu, Jing-Yan; Zhang, Shi-Yong; Zeng, Ying; Shu, Xia; Du, Zi-Yi; He, Chun-Ting; Zhang; Wei-Xiong, Chen, Xiao-Ming, Angew. Chem. Int. Ed. 2018, 10.1002/anie.201802580. Link
发明专利:
1. 系列乙二铵三元晶态化合物及其制备方法以及作为含能材料的用途
西安固能新材料科技有限公司
张伟雄; 尚宇; 陈劭力; 陈小明
公开日期: 2025-05-06 申请日期: 2020-07-14 公开号: CN113929641B

2. 化合物及其制备方法以及作为含能材料的用途
SUN YAT-SEN UNIVERSITY
ZHANG WEIXIONG; SHANG YU; CHEN SHAOLI; CHEN XIAOMING
公开日期: 2025-05-06 申请日期: 2020-01-22 公开号: CN113149933B

3. 一种柔性钙基金属有机框架材料MCF-58及其制备方法和在醇/苯共沸物分离中的应用
中山大学
周东东; 周牧阳; 林锐标; 张杰鹏; 陈小明
公开日期: 2024-04-26 申请日期: 2023-12-13 公开号: CN117924720A

4. COMPOUNDS AND PREPARATION METHOD THEREFOR AND USE THEREOF AS ENERGETIC MATERIALS
Xi'an Crysten Materials Technology
Corporation Limited
ZHANG Weixiong; SHANG Yu; CHEN Shaoli; CHEN Xiaoming
公开日期: 2022-11-30 申请日期: 2021-01-21 公开号: EP4095120A1

5. PEROVSKITE TYPE COMPOUND ABX3
XI'AN CRYSTEN MATERIALS TECHNOLOGY CORPORATION LIMITED
Weixiong ZHANG; Shaoli CHEN; Xiaoming CHEN
公开日期: 2021-09-02 申请日期: 2020-12-23 公开号: US20210269375A1

6. 一类化合物在作为含能材料方面的用途
中山大学
张伟雄; 陈小明; 陈劭力
公开日期: 2020-08-28 申请日期: 2016-08-12 公开号: CN107721781B

7. USE OF TYPE OF COMPOUNDS AS ENERGY-CONTAINING MATERIAL
YICHANG ENERGY MATERIALS TECHNOLOGY CORPORATION LIMITED
Weixiong ZHANG; Shaoli CHEN; Xiaoming CHEN
公开日期: 2019-04-18 申请日期: 2017-08-11 公开号: US20190112242A1

8. Use of type of compounds as energy-containing material
YICHANG ENERGY MATERIALS TECH CORPORATION LIMITED
ZHANG WEIXIONG; CHEN SHAOLI; CHEN XIAOMING
公开日期: 2018-11-01 申请日期: 2017-08-11 公开号: AU2017311153A1

9. Use of type of compounds as energy-containing material
YICHANG ENERGY MATERIALS TECH CORPORATION LIMITED
ZHANG WEIXIONG; CHEN SHAOLI; CHEN XIAOMING
公开日期: 2018-11-01 申请日期: 2017-08-11 公开号: AU2017311153A1

10. Use of compounds in energetic materials
YICHANG ENERGY MATERIALS TECH CORPORATION LIMITED
CHEN SHAO-LI; CHEN XIAO-MING; ZHANG WEI-XIONG
公开日期: 2018-10-01 申请日期: 2017-08-11 公开号: TW201835009A

11. 一类化合物及其制备方法
中山大学
张伟雄; 陈劭力; 陈小明
公开日期: 2018-02-23 申请日期: 2016-08-12 公开号: CN107722022A

12. 一类化合物及其制备方法
中山大学
张伟雄; 陈劭力; 陈小明
公开日期: 2018-02-23 申请日期: 2016-08-12 公开号: CN107722023A

13. 一类化合物及其制备方法
中山大学
陈小明; 陈劭力; 张伟雄
公开日期: 2018-02-23 申请日期: 2016-08-12 公开号: CN107722022B

14. 一类化合物在作为含能材料方面的用途
UNIV SUN YAT SEN
ZHANG WEIXIONG; CHEN SHAOLI; CHEN XIAOMING
公开日期: 2018-02-15 申请日期: 2017-08-11 公开号: WO2018028685A1

15. USE OF TYPE OF COMPOUNDS AS ENERGETIC MATERIALS
YICHANG ENERGY MATERIALS TECH CORPORATION LIMITED
ZHANG WEIXIONG; CHEN SHAOLI; CHEN XIAOMING
公开日期: 2018-02-15 申请日期: 2017-08-11 公开号: CA3027813A1

16. 配位聚合物多孔材料MAF‑23在分离纯化C4烃类混合物和提取丁二烯中的应用
中山大学
廖培钦; 洪惠玲; 陈小明; 张杰鹏
公开日期: 2017-11-03 申请日期: 2017-06-14 公开号: CN107311834A

17. 配位聚合物多孔材料MAF‑23在分离纯化C4烃类混合物和提取丁二烯中的应用
中山大学
张杰鹏; 廖培钦; 洪惠玲; 陈小明
公开日期: 2017-11-03 申请日期: 2017-06-14 公开号: CN107311834A

18. 一类化合物在作为含能材料方面的用途
中山大学
张伟雄; 陈小明; 陈劭力
公开日期: 2017-01-04 申请日期: 2016-08-12 公开号: CN106278771A

19. 一种配位聚合物多孔材料MAF-49及其制备方法和应用
中山大学
张杰鹏; 廖培钦; 洪惠玲; 陈小明
公开日期: 2015-11-11 申请日期: 2015-07-08 公开号: CN105037403A
科研项目:
1. 电/磁配位聚合物晶体的结构与性能调控
立项时间: 2010-2013 项目经费:2200000

2. 限域空间与表面的分子极化效应与调控
立项时间: 2013-2017 项目经费:4000000

3. 磁电功能分子晶态材料的结构设计与可控制备
立项时间: 2015-2017 项目经费:11000000

4. 含咪唑配体金属配合物的合成和结构与性质
立项时间: 1997-1999 项目经费:100000

5. 功能金属配合物的超分子化学与晶体工程
立项时间: 2012-2014 项目经费:6000000

6. 聚合金属配合物的构筑与结构调控和性质
立项时间: 2000-2002 项目经费:150000

7. 第三届中韩无机化学双边会议
立项时间: 2001-2001 项目经费:4000

8. 多糖誘導体からなる次世代型のクロマト用キラル充填剤の開発
项目经费:2400000

9. 第六届中韩无机化学双边研讨会
立项时间: 2010-2011 项目经费:50000

10. 仿生配体及其过渡金属配合物的合成与结构研究
立项时间: 1994-1996 项目经费:50000

11. “第八届全国生物无机化学会议”
立项时间: 2005-2005 项目经费:30000

12. 功能金属配合物的超分子化学与晶体工程
立项时间: 2009-2011 项目经费:5000000

13. 无机-有机杂化材料的控制合成、结构调控及性能研究
立项时间: 2002-2005 项目经费:1200000

14. 第六届欧亚化学大会
立项时间: 2000-2000 项目经费:5000

15. 新型CdTe@MOF复合材料的合成及在二氧化碳光催化还原反应中的应用
立项时间: 2021-2022

16. 二维导电MOF的合成和CO2RR性能研究
立项时间: 2021-2022

17. 多孔配合物及其衍生物用于二氧化碳转化
立项时间: 2019-2023

18. 面向能源相关小分子活化/转化的多孔配合物及其衍生物
立项时间: 2019-2023

19. 专题研讨类:配位化学学科发展
立项时间: 2023

项目合作

合作意向:
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