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Landis CR, Cleveland T, Casey CP. Structures of M(allyl)4 (M = Mo, W, Zr). Inorganic Chemistry. 1995 ;34:1285-7.
Landis CR, Weinhold F. Natural bond orbitals and lewis-like structures of copper blue proteins. Model. Mol. Prop. 2011 :77-89.
Landis CR, Weinhold F. 18-Electron Rule and the 3c/4e Hyperbonding Saturation Limit. Journal of Computational Chemistry. 2016 ;37:237-241.
Landis CR, Jin WC, Owen JS, Clark TP. Rapid access to diverse arrays of chiral 3,4-diazaphospholanes. Angewandte Chemie-International Edition. 2001 ;40:3432-+.
Landis CR, Cleveland T, Firman TK. Structure of W(CH3)(6). Science. 1996 ;272:182-182.
Landis CR, Halpern J. Asymmetric hydrogenation of methyl (Z)-α-acetamidocinnamate catalyzed by [1,2-bis(phenyl-o-anisoyl)phosphino)ethane]rhodium(I): kinetics, mechanism and origin of enantioselection. Journal of the American Chemical Society. 1987 ;109:1746-54.
Landis CR, Morales CM, Stahl SS. Insights into the Spin-Forbidden Reaction between L2Pd0 and Molecular Oxygen. Journal of the American Chemical Society. 2004 ;126:16302-16303.
Landis CR, Hilfenhaus P, Feldgus S. Structures and reaction pathways in rhodium(I)-catalyzed hydrogenation of enamides: A model DFT study. Journal of the American Chemical Society. 1999 ;121:8741-8754.
Landis CR, Cleveland T, Firman TK. Making Sense of the Shapes of Simple Metal Hydrides. Journal of the American Chemical Society. 1995 ;117:1859-60.
Landis CR, Weinhold F. 3c/4e (sigma)over-cap-Type Long-Bonding: A Novel Transitional Motif toward the Metallic De localization Limit. Inorganic Chemistry. 2013 ;52:5154-5166.
Landis CR, Hughes RP, Weinhold F. Bonding Analysis of TM(cAAC)(2) (TM = Cu, Ag, and Au) and the Importance of Reference State. Organometallics. 2015 ;34:3442-3449.
Landis CR, Rosaaen KA, Uddin J. Heavy-atom kinetic isotope effects, cocatalysts, and the propagation transition state for polymerization of 1-hexene using the rac-(C2H4(1-indenyl)(2))ZrMe2 catalyst precursor. Journal of the American Chemical Society. 2002 ;124:12062-12063.
Landis CR, Brauch TW. Probing the nature of H-2 activation in catalytic asymmetric hydrogenation. Inorganica Chimica Acta. 1998 ;270:285-297.
Landis CR, Sullivan GW, Pleil MW, Borst WL, Crelling JC. Pulsed laser fluorescence microscopy of coal macerals and dispersed organic material. Fuel. 1987 ;66:984-91.
Landis CR, Sillars DR, Batterton JM. Reactivity of secondary metallocene alkyls and the question of dormant sites in catalytic alkene polymerization. Journal of the American Chemical Society. 2004 ;126:8890-8891.
Landis CR, Feldgus S. A simple model for the origin of enantioselection and the anti "lock-and-key" motif in asymmetric hydrogenation of enamides as catalyzed by chiral diphosphine complexes of Rh(I). Angewandte Chemie-International Edition. 2000 ;39:2863-2866.
Landis CR. Construction and deconstruction of aldehydes by transfer hydroformylation. Science. 2015 ;347:29-30.
Landis CR, Uddin J. Quantum mechanical modelling of alkene hydroformylation as catalyzed by xantphos-Rh complexes. Journal of the Chemical Society-Dalton Transactions. 2002 :729-742.
Landis CR, Cleveland T, Firman TK. Valence bond concepts applied to the molecular mechanics description of molecular shapes. 3. Applications to transition metal alkyls and hydrides. Journal of the American Chemical Society. 1998 ;120:2641-2649.
Landis CR, Allured VS. Elucidation of solution structures by conformer population analysis of NOE data. Journal of the American Chemical Society. 1991 ;113:9493-9.
Landis CR, Nelson RC, Jin WC, Bowman AC. Synthesis, characterization, and transition-metal complexes of 3,4-diazaphospholanes. Organometallics. 2006 ;25:1377-1391.
Landis CR, Feldgus S, Uddin J, Wozniak CE, Moloy KG. Computational Assessment of the Effect of σ-π Bonding Synergy and Reorganization Energies on Experimental Trends in Rhodium-Phosphine Bond Enthalpies. Organometallics. 2000 ;19:4878-4886.
Landis CR, Root DM, Cleveland T. Molecular mechanics force fields for modeling inorganic and organometallic compounds. Rev. Comput. Chem. 1995 ;6:73-148.
Landis CR, Halpern J. Cationic rhodium hydrogenation catalysts containing chelating diphosphine ligands: effect of chelate ring size. Journal of Organometallic Chemistry. 1983 ;250:485-90.
Landis CR, Rosaaen KA, Sillars DR. Direct observation of insertion events at rac-(C2H4(1-indenyl)(2))Zr(MeB(C6F5)(3))-polymeryl intermediates: Distinction between continuous and intermittent propagation modes. Journal of the American Chemical Society. 2003 ;125:1710-1711.
Landis CR, Firman TK, Root DM, Cleveland T. A valence bond perspective on the molecular shapes of simple metal alkyls and hydrides. Journal of the American Chemical Society. 1998 ;120:1842-1854.
Landis CR, Moore JW, Treichel PM, Wright JC, Moore EA. Curriculum Planning Conference - a Summary of the Proceedings. Journal of Chemical Education. 1994 ;71:454-456.
Landis CR, Weinhold F. Valence and extra-valence orbitals in main group and transition metal bonding. Journal of Computational Chemistry. 2007 ;28:198-203.
Landis CR, Weinhold F. The NBO View of Chemical Bonding. In: Frenking G, Shaik S Chemical Bond: Fundamental Aspects of Chemical Bonding. Chemical Bond: Fundamental Aspects of Chemical Bonding. Wiley; 2014. pp. 91-119.
Landis CR, Sawyer RA, Somsook E. Synthesis and Characterization of a Chiral, Aza-15-Crown-5-Functionalized Ferrocenyldiphosphine Ligand for Asymmetric Catalysis. Organometallics. 2000 ;19:994-1002.
Landis CR. Valence bond concepts, molecular mechanics computations, and molecular shapes. Adv. Mol. Struct. Res. 1996 ;2:129-161.
Landis CR, Halpern J. Homogeneous catalysis of arene hydrogenation by cationic rhodium arene complexes. Organometallics. 1983 ;2:840-2.
Landis CR, Clark TP. Solid-phase synthesis of chiral 3,4-diazaphospholanes and their application to catalytic asymmetric allylic alkylation. Proceedings of the National Academy of Sciences of the United States of America. 2004 ;101:5428-5432.
Landis CR, Peace GE, Scharberg MA, Branz S, Spencer JN, Ricci RW, Zumdahl SA, Shaw D. The new traditions consortium: Shifting from a faculty-centered paradigm to a student-centered paradigm. Journal of Chemical Education. 1998 ;75:741-744.