K. Mohamed Yusuf Baig, P. Sujita, S. Vadivel, Goutam Kumar Kole
Three novel cadmium(II)-based coordination polymers (CPs) have been successfully synthesized and structurally characterized, namely, [Cd(9-AnBz) 4 ( 4,4′-bpy ) 2 ] ( CP1 ), [Cd(9-AnBz) 4 ( 4,4′-bpdb ) 2 ] ( CP2 ), [Cd(9-AnBz) 2 ( 3,3′-bpdb ) 2 (H 2 O) 2 ]·H 2 O ( CP3 ) (where 9-AnBz = 9-anthracenyl-4′-benzoate, 4,4′-bpy = 4,4′-bipyridine, 4,4′-bpdb = 1,4-bis(4′-pyridyl)-2,3-diaza-1,3-butadiene, 3,3′-bpdb = 1,4-bis(3′-pyridyl)-2,3-diaza-1,3-butadiene). Single-crystal X-ray diffraction unambiguously confirmed their structural architectures, with CP1 adopting a two-dimensional coordination polymeric network, CP2 adopting a double-stranded ladder-like coordination polymer, and CP3 adopting a linear zigzag one-dimensional coordination polymeric chain. These three CPs have been explored for their performances in supercapacitor applications. CP1 with a two-dimensional network structure exhibited the highest electrochemical performance in this series, with a prominent current response in CV, and a long, extended discharge capacity in GCD analysis. CP1 delivered a very good specific capacitance of 1323 F g –1 at 3 A g –1, ∼10-fold higher than that of CP2 and CP3 . It is anticipated that the two-dimensional layered structure with the shortest intermetallic distance in CP1 facilitates a prominent energy-storage performance.