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2.Chunfeng, Z.; Zhongyuan, Y.; Tong, L.; Jintang, L.*; Xuetao, L. Structure Design of Cobalt Phosphate On Nickel Foam for Electrocatalytic Oxygen Evolution. Nanotechnology 2021.
3.Li, J.*; Zheng, J.; Cheng, X.; Yue, G.; Luo, X. NiFeP nanocages Embedded in Melamine Sponge derived nitrogen doped porous carbon foam as an efficient oxygen evolution electrocatalyst. J Solid State Chem 2019, 278.
4.Cheng, X.; Zheng, J.; Li, J.*; Luo, X. Iron Doping Effect for Oxygen Evolution Hybrid Catalysts based on Nickel Phosphate/Nitrogen-Doped Carbon Nanoflakes. Chemelectrochem 2019, 6 (8), 2195-2200.
5.Li, J. T.*; Du, G. Q.; Cheng, X.; Feng, P. J.; Luo, X. T. CoNiP/NC polyhedrons derived from cobalt-based zeolitic imidazolate frameworks as an active electrocatalyst for oxygen evolution. Chinese Journal of Catalysis 2018, 39 (5), 982-987.
6.Feng, P.; Cheng, X.; Li, J.*; Luo, X. Co3(PO4)2 Nanoparticles Embedded in Nitrogen-Doped Carbon as an Advanced Electrocatalyst for OER in Alkaline Solution. Catalysis Letters 2018, 148 (1), 214-219.
7.Feng, P.; Cheng, X.; Li, J.*; Luo, X. Calcined Nickel-Cobalt Mixed Metal Phosphonate with Efficient Electrocatalytic Activity for Oxygen Evolution Reaction. ChemistrySelect 2018, 3 (2), 760-764.
8.Wang, C. N.; Feng, P. J.; Li, J. T.*; Luo, X. T. Synthesis, crystal structures and luminescence properties of two metal carboxyphosphonates. J Solid State Chem 2017, 249, 136-140.
9.Du, G. Q.; Feng, P. J.; Cheng, X.; Li, J. T.*; Luo, X. T. Immobilizing of ZIF-8 derived ZnO with controllable morphologies on zeolite A for efficient photocatalysis. J Solid State Chem 2017, 255, 215-218.
10.Li, J.*; Chen, R.; Zeng, X.; Wang, C.; Chen, Y.; Luo, X., Amine-templated Synthesis of Two Metal Phosphonates Based on 5-Phosphononicotinic Acid. Inorganica Chimica Acta 444 (2016) 181–185.
11.Li, J.*; Zeng, X.; Yang, X.; Wang, C.; Luo, X., Synthesis of pure sodalite with wool ball morphology from alkali fusion kaolin. Materials Letters 2015, 161, 157-159.
12.Wang, C.; Feng, P.; Li, J.*; Luo, X., Synthesis, crystal structures and luminescence properties of two metal carboxyphosphonates. Journal of Solid State Chemistry 249 (2017) 136–140
13.Li, J.-T.; Cao, D.-K.; Akutagawa, T.; Zheng, L.-M., Zn3(4-OOCC6H4PO3)2: A polar metal phosphonate with pillared layered structure showing SHG-activity and large dielectric anisotropy. Dalton Transactions 2010, 39 (37), 8606-8608.
14.Li, J. T.; Zheng, L. M., Ln(2)(O2CCH2PO3)(2)(H2O)(3) center dot H2O (Ln = La, Pr, Nd, Sm): Layered lanthanide phosphonoacetates containing two-dimensional -Ln-O- linkages. Inorganica Chimica Acta 2009, 362 (6), 1739-1742.
15.Li, J. T.; Ma, Y. S.; Li, S. G.; Cao, D. K.; Li, Y. Z.; Song, Y.; Zheng, L. M., Mixed-valent manganese phosphonate clusters prepared under microwave-assisted and ambient conditions. Dalton Transactions 2009, (25), 5029-5034.
16.Li, J. T.; Keene, T. D.; Cao, D. K.; Decurtins, S.; Zheng, L. M., [M(OOCC6H4PO3H)(H2O)] (M(II) = Mn, Co, Ni): layered metal phosphonates showing variable magnetic behavior. Crystengcomm 2009, 11 (7), 1255-1260.
17.Li, J. T.; Guo, L. R.; Shen, Y.; Zheng, L. M., LiF-assisted crystallization of zinc 4-carboxyphenylphosphonates with pillared layered structures. Crystengcomm 2009, 11 (8), 1674-1678.
18.Li, J. T.; Yang, T. H.; Li, Y. Z.; Zheng, L. M., Copper Phosphonate Complex Cu(O3PC6H4COOH) Showing a New Type of Layered Structure. Chinese Journal of Inorganic Chemistry 2008, 24 (11), 1885-1889.
19.Li, J. T.; Cao, D. K.; Liu, B.; Li, Y. Z.; Zheng, L. M., Zinc 4-carboxyphenylphosphonates with pillared layered framework structures containing large 12-membered rings built up from tetranuclear Zn-4 clusters and CPO3 linkages. Crystal Growth & Design 2008, 8 (8), 2950-2953.
20.Li, J. T.; Tao, J.; Huang, R. B.; Zheng, L. S.; Yuen, T.; Lin, C. L.; Varughese, P.; Li, J., A three-dimensional coordination polymer featuring effective ferrimagnetic hydroxide-bridged manganese(II) chains. Inorganic Chemistry 2005, 44 (13), 4448-4450.
21.Huang, L.; Lai, H.; Lu, C.; Fang, M.; Ma, W.; Xing, P.; Luo, X.; Li, J.*, Evaporation Behavior of Phosphorus from Metallurgical Grade Silicon via Calcium-Based Slag Treatment and Hydrochloric Acid Leaching. Journal of Electronic Materials 2016, 45 (1), 541-552.
Lu, C.; Huang, L.; Lai, H.; Fang, M.; Ma, W.; Xing, P.; Zhang, L.; Li, J.*; Luo, X., Effects of Slag Refining on Boron Removal from Metallurgical-Grade Silicon Using Recycled Slag with Active Component. Separation Science and Technology (Philadelphia) 2015, 50 (17), 2759-2766.