rhodium has been researched along with cyclopropane in 19 studies
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 0 (0.00) | 18.7374 |
1990's | 0 (0.00) | 18.2507 |
2000's | 1 (5.26) | 29.6817 |
2010's | 17 (89.47) | 24.3611 |
2020's | 1 (5.26) | 2.80 |
Authors | Studies |
---|---|
Davies, HM; Nagashima, T | 1 |
Li, X; Robichaux, PJ; Shu, D; Tang, W; Zhang, M | 1 |
Gupta, SK; Kumari, G; Modi, M; Singh, RK | 1 |
Charette, AB; Lindsay, VN; Nicolas, C | 1 |
DeAngelis, A; Dmitrenko, O; Fox, JM | 1 |
Kitano, Y; Oonishi, Y; Sato, Y | 1 |
Dong, X; Li, G; McDowell, P; Shi, M; Yuan, W | 1 |
Stryker, JM; Ylijoki, KE | 1 |
Fox, JM; Li, Y; Xie, X | 1 |
Ball, ZT; Sambasivan, R | 1 |
Li, C; Wang, B; Wang, J; Xie, G; Zhang, H; Zhang, Y | 1 |
Kurokawa, K; Mukai, C; Ohta, Y; Yasuda, S; Yokogawa, Y | 1 |
Evans, PA; Negru, DE; Shang, D | 1 |
Ellis-Guardiola, K; Lewis, JC; Srivastava, P; Yang, H | 1 |
Wang, Y; Yu, ZX | 1 |
Arman, H; Cheng, QQ; Doyle, MP; Yedoyan, J | 1 |
Liu, CH; Yu, ZX | 1 |
Hartwig, JF; Lee, T | 1 |
Bistoni, G; Buchsteiner, M; Fürstner, A; Goddard, R; Singha, S | 1 |
1 review(s) available for rhodium and cyclopropane
Article | Year |
---|---|
[5 + 2] cycloaddition reactions in organic and natural product synthesis.
Topics: Alkenes; Chemistry Techniques, Synthetic; Cycloaddition Reaction; Cyclopropanes; Heterocyclic Compounds, 3-Ring; Pyrones; Rhodium; Ruthenium; Sesquiterpenes; Silanes; Vinyl Compounds | 2013 |
18 other study(ies) available for rhodium and cyclopropane
Article | Year |
---|---|
Catalytic asymmetric cyclopropanation using bridged dirhodium tetraprolinates on solid support.
Topics: Catalysis; Cyclopropanes; Rhodium | 2002 |
Synthesis of highly functionalized cyclohexenone rings: rhodium-catalyzed 1,3-acyloxy migration and subsequent [5+1] cycloaddition.
Topics: Catalysis; Cyclohexenes; Cyclopropanes; Rhodium; Stereoisomerism | 2011 |
Rhodium(II) acetate-catalyzed stereoselective synthesis, SAR and anti-HIV activity of novel oxindoles bearing cyclopropane ring.
Topics: Acetates; Anti-HIV Agents; Catalysis; Cell Line; Cell Survival; Cyclopropanes; HIV-1; Indoles; Models, Molecular; Molecular Conformation; Organometallic Compounds; Oxindoles; Rhodium; Stereoisomerism; Structure-Activity Relationship; Substrate Specificity | 2011 |
Asymmetric Rh(II)-catalyzed cyclopropanation of alkenes with diacceptor diazo compounds: p-methoxyphenyl ketone as a general stereoselectivity controlling group.
Topics: Alkenes; Aziridines; Azo Compounds; Catalysis; Cyclopropanes; Ketones; Models, Molecular; Molecular Conformation; Rhodium; Stereoisomerism; Substrate Specificity | 2011 |
Rh-catalyzed intermolecular reactions of cyclic α-diazocarbonyl compounds with selectivity over tertiary C-H bond migration.
Topics: Azo Compounds; Catalysis; Computer Simulation; Cyclopropanes; Hydrogen; Methane; Molecular Conformation; Rhodium; Stereoisomerism | 2012 |
C sp 3-H bond activation triggered by formation of metallacycles: rhodium(I)-catalyzed cyclopropanation/cyclization of allenynes.
Topics: Alkynes; Catalysis; Cyclization; Cyclopropanes; Rhodium | 2012 |
Rh(I)-catalyzed Pauson-Khand-type cycloaddition reaction of ene-vinylidenecyclopropanes with carbon monoxide (CO).
Topics: Carbon Monoxide; Catalysis; Combinatorial Chemistry Techniques; Crystallography, X-Ray; Cyclization; Cycloaddition Reaction; Cyclopropanes; Ethane; Hydrocarbons, Chlorinated; Molecular Conformation; Molecular Structure; Rhodium; Spiro Compounds | 2012 |
Selective syntheses of Δ(α,β) and Δ(β,γ) butenolides from allylic cyclopropenecarboxylates via tandem ring expansion/[3,3]-sigmatropic rearrangements.
Topics: 4-Butyrolactone; Catalysis; Cyclopropanes; Esters; Molecular Structure; Rhodium; Stereoisomerism | 2013 |
Studies of asymmetric styrene cyclopropanation with a rhodium(II) metallopeptide catalyst developed with a high-throughput screen.
Topics: Catalysis; Cyclopropanes; Drug Evaluation, Preclinical; Ligands; Molecular Structure; Peptide Library; Rhodium; Styrene | 2013 |
Zn(II)- or Rh(I)-catalyzed rearrangement of silylated [1,1'-bi(cyclopropan)]-2'-en-1-ols.
Topics: Alcohols; Catalysis; Cyclopropanes; Molecular Structure; Rhodium; Silanes; Zinc | 2014 |
Stereospecific and stereoselective rhodium(I)-catalyzed intramolecular [2+2+2] cycloaddition of allene-ene-ynes: construction of bicyclo[4.1.0]heptenes.
Topics: Alkynes; Bridged Bicyclo Compounds; Catalysis; Cycloaddition Reaction; Cyclopropanes; Rhodium; Stereoisomerism | 2015 |
Rhodium-catalyzed [(3+2)+2] carbocyclization of alkynylidenecyclopropanes with substituted allenes: stereoselective construction of tri- and tetrasubstituted exocyclic olefins.
Topics: Alkenes; Bridged Bicyclo Compounds; Catalysis; Cyclization; Cyclopropanes; Rhodium; Stereoisomerism | 2015 |
Engineering a dirhodium artificial metalloenzyme for selective olefin cyclopropanation.
Topics: Alkenes; Catalysis; Cyclopropanes; Organometallic Compounds; Prolyl Oligopeptidases; Rhodium; Serine Endopeptidases; Stereoisomerism | 2015 |
Rhodium-catalyzed [5 + 2 + 1] cycloaddition of ene-vinylcyclopropanes and CO: reaction design, development, application in natural product synthesis, and inspiration for developing new reactions for synthesis of eight-membered carbocycles.
Topics: Alkenes; Alkynes; Biological Products; Carbon Monoxide; Catalysis; Cycloaddition Reaction; Cyclopropanes; Rhodium | 2015 |
Dirhodium(II)-Catalyzed Annulation of Enoldiazoacetamides with α-Diazoketones: An Efficient and Highly Selective Approach to Fused and Bridged Ring Systems.
Topics: Acetamides; Azo Compounds; Catalysis; Cycloaddition Reaction; Cyclopropanes; Furans; Ketones; Rhodium; Stereoisomerism | 2016 |
Rh-catalysed [5 + 1] cycloaddition of allenylcyclopropanes and CO: reaction development and application to the formal synthesis of (-)-galanthamine.
Topics: Carbon Monoxide; Catalysis; Cycloaddition Reaction; Cyclopropanes; Galantamine; Rhodium; Stereoisomerism | 2016 |
Rhodium-Catalyzed Enantioselective Silylation of Cyclopropyl C-H Bonds.
Topics: Carbon; Catalysis; Cyclopropanes; Hydrogen; Rhodium; Silanes; Stereoisomerism | 2016 |
A New Ligand Design Based on London Dispersion Empowers Chiral Bismuth-Rhodium Paddlewheel Catalysts.
Topics: Bismuth; Catalysis; Coordination Complexes; Cycloaddition Reaction; Cyclopropanes; Ligands; Molecular Conformation; Rhodium; Stereoisomerism | 2021 |