[1] LU J J, MONTIGAUD V, CADOR O, et al. Lanthanide(Ⅲ) hexanuclear circular helicates: slow magnetic relaxation, toroidal arrangement of magnetic moments, and magnetocaloric effects[J]. Inorganic Chemistry, 2019, 58(18): 11903-11911. [2] XIE S F, HUANG L Q, ZHONG L, et al. Structures, single-molecule magnets, and fluorescent properties of four dinuclear lanthanide complexes based on 4-azotriazolyl-3-hydroxy-2-naphthoic acid[J]. Inorganic Chemistry, 2019, 58(9): 5914-5921. [3] 卫晓琴, 张凤英, 李万喜, 等. 盘状镝簇合物的合成及缓慢磁弛豫[J]. 无机化学学报, 2022, 38(7): 1382-1390. WEI X Q, ZHANG F Y, LI W X, et al. Synthesis and slow magnetic relaxation of a disc-like dysprosium cluster[J]. Chinese Journal of Inorganic Chemistry, 2022, 38(7): 1382-1390 (in Chinese). [4] 磨 清, 董大朋, 赵海燕, 等. 两个基于三氰构筑单元三核氰基簇合物的合成、结构与磁性研究[J]. 人工晶体学报, 2018, 47(12): 2534-2539. MO Q, DONG D P, ZHAO H Y, et al. Synthesis, structures and magnetic properties of two trinuclear cyanide-bridged clusters based on tricyanometalate building block[J]. Journal of Synthetic Crystals, 2018, 47(12): 2534-2539 (in Chinese). [5] 徐 斐, 李港美, 韩松德, 等. 两种双核稀土配合物的光致变色和光磁效应[J]. 高等学校化学学报, 2022, 43(1): 168-174. XU F, LI G M, HAN S D, et al. Photochromism and photomagnetism in two dinuclear lanthanide complexes[J]. Chemical Journal of Chinese Universities, 2022, 43(1): 168-174 (in Chinese). [6] ZHENG Z P. Ligand-controlled self-assembly of polynuclear lanthanide-oxo/hydroxo complexes: from synthetic serendipity to rational supramolecular design[J]. Chemical Communications, 2001(24): 2521-2529. [7] GAO H L, WANG N N, WANG W M, et al. Fine-tuning the magnetocaloric effect and SMMs behaviors of coplanar RE4 complexes by β-diketonate coligands[J]. Inorganic Chemistry Frontiers, 2017, 4(5): 860-870. [8] YANG X P, JONES R A, WIESTER M J. A nanoscale slipped sandwich of Tb10-stabilization of a benzaldehyde methyl hemiacetyl[J]. Dalton Transactions, 2004(12): 1787-1788. [9] SHI D L, YANG X P, CHEN H F, et al. Large Ln42 coordination nanorings: NIR luminescence sensing of metal ions and nitro explosives[J]. Chemical Communications, 2019, 55(87): 13116-13119. [10] CHANG L X, XIONG G, WANG L, et al. A 24-Gd nanocapsule with a large magnetocaloric effect[J]. Chemical Communications, 2013, 49(11): 1055-1057. [11] WU M Y, JIANG F L, KONG X J, et al. Two polymeric 36-metal pure lanthanide nanosize clusters[J]. Chemical Science, 2013, 4(8): 3104-3109. [12] ZHOU Y, ZHENG X Y, CAI J, et al. Three giant lanthanide clusters Ln37 (ln=Gd, Tb, and Eu) featuring a double-cage structure[J]. Inorganic Chemistry, 2017, 56(4): 2037-2041. [13] QIN L, YU Y Z, LIAO P Q, et al. A “molecular water pipe”: a giant tubular cluster{Dy72}exhibits fast proton transport and slow magnetic relaxation[J]. Advanced Materials, 2016, 28(48): 10772-10779. [14] SHELDRICK, G. M. SADABS, Program for Absorption Correction of Area Detector Frames, BRUKER AXS Inc., Madison, WI. [15] SHELDRICK, G. M. SHELXL-2014, Program for refinement of crystal structures, University of Göttingen, Germany, 2014. [16] WANG K, CHEN Z L, ZOU H H, et al. Diacylhydrazone-assembled{Ln11}nanoclusters featuring a double-boats conformation topology: synthesis, structures and magnetism[J]. Dalton Transactions, 2018, 47(7): 2337-2343. [17] LI Y M, KUANG W W, ZHU L L, et al. Two discrete Ln12 shelf-shaped clusters: magnetic studies reveal a significant cryogenic magnetocaloric effect and slow magnetic relaxation[J]. European Journal of Inorganic Chemistry, 2016, 2016(31): 4996-5003. [18] TU H R, SUN W B, LI H F, et al. Complementation and joint contribution of appropriate intramolecular coupling and local ion symmetry to improve magnetic relaxation in a series of dinuclear Dy2 single-molecule magnets[J]. Inorganic Chemistry Frontiers, 2017, 4(3): 499-508. |