New synthetic routes to biscarbonylbipyridinerhenium(I) complexes cis,trans-[Re(X2bpy)(CO)2(PR3)(Y)]n+ (X2bpy=4,4′-X2-2,2′-bipyridine) via photochemical ligand substitution reactions, and their photophysical and electrochemical properties

被引:88
作者
Koike, K
Tanabe, J
Toyama, S
Tsubaki, H
Sakamoto, K
Westwell, JR
Johnson, FPA
Hori, H
Saitoh, H
Ishitani, O
机构
[1] Saitama Univ, Grad Sch Sci & Engn, Urawa, Saitama 3388570, Japan
[2] Saitama Univ, Fac Sci, Urawa, Saitama 3388570, Japan
[3] Natl Inst Resources & Environm, Tsukuba, Ibaraki 305, Japan
[4] Univ Nottingham, Dept Chem, Nottingham NG7 2RD, England
关键词
D O I
10.1021/ic991190l
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
Photochemical ligand substitution of fac-[Re(X(2)bpy)(CO)(3)(PR3)](+) (X(2)bpy = 4,4'-X-2-2,2'-bipyridine; X = Me, H, CF3; R = OEt, Ph) with acetonitrile quantitatively gave a new class of biscarbonyl complexes, cis,trans[Re(X(2)bpy)(CO)(2)(PR3)(MeCN)](+), coordinated with four different kinds of ligands. Similarly, other biscarbonylrhenium complexes, cis, trans-[Re(X(2)bpy)(CO)(2)(PR3)(Y)](n+) (n = 0, Y = Cl-; n = 1, Y = pyridine, PR'(3)), were synthesized in good yields via photochemical ligand substitution reactions. The structure of cis,trans-[Re(Me(2)bpy)(CO)(2){P(OEt)(3)}(PPh3)] (PF6) was determined by X-ray analysis. Crystal data: C38H42N2O5F6P3Re, monoclinic P2(1)/a, a = 11.592(1) Angstrom, b = 30.953(4) Angstrom, c = 11.799(2) Angstrom, V = 4221.6(1) Angstrom(3), Z = 4, 7813 reflections, R = 0.066. The biscarbonyl complexes with two phosphorus ligands were strongly emissive from their (MLCT)-M-3 state with lifetimes of 20-640 ns in fluid solutions at room temperature. Only weak or no emission was observed in the cases Y = Cl-, MeCN, and pyridine. Electrochemical reduction of the biscarbonyl complexes with Y = Cl- and pyridine in MeCN resulted in efficient ligand substitution to give the solvento complexes cis,trans-[Re(X(2)bpy)(CO)(2)(PR3)(MeCN)](+).
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页码:2777 / 2783
页数:7
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[1]   SIR92 - a program for automatic solution of crystal structures by direct methods [J].
ALTOMARE, A ;
CASCARANO, G ;
GIACOVAZZO, G ;
GUAGLIARDI, A ;
BURLA, MC ;
POLIDORI, G ;
CAMALLI, M .
JOURNAL OF APPLIED CRYSTALLOGRAPHY, 1994, 27 :435-435
[2]   AMBIDENTATE COORDINATION OF THE TRIPYRIDYL LIGANDS 2,2'-6',2'-TERPYRIDYL, TRIS(2-PYRIDYL)-AMINE, TRIS(2-PYRIDYL)METHANE AND TRIS(2-PYRIDYL)PHOSPHINE TO CARBONYLRHENIUM CENTERS - STRUCTURAL AND SPECTROSCOPIC STUDIES [J].
ANDERSON, PA ;
KEENE, FR ;
HORN, E ;
TIEKINK, ERT .
APPLIED ORGANOMETALLIC CHEMISTRY, 1990, 4 (05) :523-533
[3]   Luminescent and redox-active polynuclear transition metal complexes [J].
Balzani, V ;
Juris, A ;
Venturi, M ;
Campagna, S ;
Serroni, S .
CHEMICAL REVIEWS, 1996, 96 (02) :759-833
[4]  
Braterman P.S., 1975, METAL CARBONYL SPECT
[5]   ELECTROCHEMICAL AND MECHANISTIC STUDIES OF [RE(CO)3(DMBPY)CL] AND THEIR RELATION TO THE CATALYTIC REDUCTION OF CO2 [J].
BREIKSS, AI ;
ABRUNA, HD .
JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 1986, 201 (02) :347-358
[6]   WHY C-O FACTORED FORCE-FIELD WORKS SO WELL [J].
BURDETT, JK ;
POLIAKOFF, M ;
TIMNEY, JA ;
TURNER, JJ .
INORGANIC CHEMISTRY, 1978, 17 (04) :948-952
[7]   SYNTHETIC ROUTES TO LUMINESCENT 2,2'-BIPYRIDYL COMPLEXES OF RHENIUM - PREPARATION AND SPECTRAL AND REDOX PROPERTIES OF MONO(BIPYRIDYL) COMPLEXES OF RHENIUM(III) AND RHENIUM(I) [J].
CASPAR, JV ;
SULLIVAN, BP ;
MEYER, TJ .
INORGANIC CHEMISTRY, 1984, 23 (14) :2104-2109
[8]  
CASPER JV, 1983, J PHYS CHEM-US, V13, P359
[9]   AN INSITU INFRARED STUDY OF CO2 REDUCTION CATALYZED BY RHENIUM TRICARBONYL BIPYRIDYL DERIVATIVES [J].
CHRISTENSEN, P ;
HAMNETT, A ;
MUIR, AVG ;
TIMNEY, JA .
JOURNAL OF THE CHEMICAL SOCIETY-DALTON TRANSACTIONS, 1992, (09) :1455-1463
[10]   SPECTROSCOPIC AND CRYSTALLOGRAPHIC CHARACTERIZATION OF (SIGMA-2-TERPYRIDYL)RE(CO)3CL - 2D-NMR EVIDENCE FOR A LINKAGE ISOMERIZATION REACTION [J].
CIVITELLO, ER ;
DRAGOVICH, PS ;
KARPISHIN, TB ;
NOVICK, SG ;
BIERACH, G ;
OCONNELL, JF ;
WESTMORELAND, TD .
INORGANIC CHEMISTRY, 1993, 32 (02) :237-241