【主要论著】Selected Publications
25) Zhang, X.; Lu, G.; Sun, M.; Mahankali, M.; Ma, Y.; Zhang, M.; Hua, W.; Hu, Y.; Wang, Q.; Chen, J.; He, G.*; Qi, X.*; Shen, W.*; Liu, P.*; Chen, G.* “A General Strategy for Synthesis of Cyclophane-Braced Peptide Macrocycles via Palladium-Catalyzed Intramolecular sp3 C−H Arylation”, Nat. Chem. 2018, 10, 540-548.
24) Lv, X.; Huang, F.; Wu, Y.-B.; Lu, G.* “Origin of ligand effects on reactivities of pincer-Pd catalyzed hydrocarboxylation of allenes and alkenes with formate salts: a computational study”, Catal. Sci. Technol.2018, 8, 2835-2840.
23) Lu, G.; Shao, H.;Omer, H.; Liu, P.* “Issues Particular to Organometallic Reactions” in “Applied Theoretical Organic Chemistry”, Ed. Tantillo, D., World Scientific, 2018. (book chapter)
22) Lv, X.; Wu, Y.-B.; Lu, G.* “Computational exploration of ligand effects in copper-catalyzed boracarboxylation of styrene with CO2”, Catal. Sci. Technol. 2017, 7, 5049-5054. (Hot Article)
21) O’Duill, M.; Matsuura, R.;Wang, Y.; Turnbull, J.; Gurak, J.; Gao, D.; Lu, G.; Liu, P.*; Engle, K.* “Tridentate Directing Groups Stabilize 6-Membered Palladacycles in Catalytic Alkene Hydrofunctionalization”,J. Am. Chem. Soc. 2017, 139, 15576-15579.
20) Lu, G.; Yang Y.; Liu, R. Y.; Fang, C.; Lambrecht, D. S.*; Buchwald, S. L.*; Liu, P.* “Ligand-Substrate Dispersion Facilitates the Copper-Catalyzed Hydroamination of Unactivated Olefins”, J. Am. Chem. Soc. 2017,139, 16548-16555. (Top 20 most read JACS papers in November, 2017.)
19) Burrows, L. C.; Jesikiewicz, L. T.; Lu, G.; Geib, S. J.; Liu, P.*; Brummond, K. M.* “Computationally-Guided Catalyst Design in the Type I Dynamic Kinetic Asymmetric Pauson−Khand Reaction of Allenyl Acetates”, J. Am. Chem. Soc. 2017, 139, 15022-15032.
18) Wang, H.; Lu, G.; Sormunen, G. J.; Malik, H. A.; Liu, P.*; Montgomery, J.* “NHC Ligands Tailored for Simultaneous Regio- and Enantiocontrol in Nickel-Catalyzed Reductive Couplings”, J. Am. Chem. Soc. 2017,139, 9317-9324.
17) Lv, X.; Lu, G.*; Wang, Z.-Q.; Xu, Z.-N.*; Guo, G.-C.* “Computational Evidence for Lewis Base-Promoted CO2 Hydrogenation to Formic Acid on Gold Surfaces”, ACS Catal. 2017, 7, 4519-4526.
16) Lv, X.; Zhang, L.; Sun, B.; Li, Z.; Wu, Y.-B.; Lu, G.* “Computational Studies of Rh-Catalyzed Carboxylation of the C(sp2)–H Bond Using CO2”, Catal. Sci. Technol. 2017, 7, 3539-3545.
15) Xia, Y.; Lu, G.; Liu, P.*; Dong, G.* “Catalytic Activation of Carbon–Carbon Bonds in Cyclopentanones”,Nature 2016, 539, 546-550.
14) He, G.*; Lu, G.; Guo, Z.; Liu, P.*; Chen, G.* “Benzazetidine Synthesis via Palladium-Catalyzed Intramolecular C−H Amination”, Nat. Chem. 2016, 8, 1131-1136.
13) Yang, Y.; Perry, I. B.; Lu, G.; Liu, P.*; Buchwald, S. L.* “Copper-Catalyzed Asymmetric Addition of Olefin-Derived Nucleophiles to Ketones”, Science 2016, 353, 144-150.
12) Kennedy, N.*; Lu, G.; Liu, P.*; Cohen, T.* “Reductive Lithiation in the Absence of Aromatic Electron Carriers. A Steric Effect Manifested on the Surface of Lithium Metal Leads to a Difference in Relative Reactivity Depending on Whether the Aromatic Electron Carrier Is Present or Absent”, J. Org. Chem. 2015, 80, 8571-8582.
11) Lu, G.; Fang, C.; Xu, T.; Dong, G.; Liu, P.*“Computational Study of Rh-Catalyzed Carboacylation of Olefins: Ligand-Promoted Rhodacycle Isomerization Enables Regioselective C–C Bond Functionalization of Benzocyclobutenones”, J. Am. Chem. Soc. 2015, 137, 8274-8283.
10) Engle, K. M.; Lu, G.; Luo, S.-X.; Henling, L. M.;Takase, M. K.; Liu, P.*; Houk, K. N.*; Grubbs, R. H.* “Origins of Initiation Rate Differences in Ruthenium Olefin Metathesis Catalysts Containing Chelating Benzylidenes”, J. Am. Chem. Soc. 2015, 137, 5782-5792.
9) Lu, G.; Zhang, P.; Sun, D.; Wang, L.; Zhou, K.; Wang, Z.-X.*; Guo, G.-C.* “Gold Catalyzed Hydrogenations of Small Imines and Nitrites: Enhanced Reactivity of Au Surface Toward H2 via Collaboration with a Lewis Base”, Chem. Sci. 2014, 5, 1082-1090.
8) Chen, Z.-W.; Lu, G.; Li, P.-X.; Lin, R.-G.; Cai, L.-Z.; Wang, M.-S.*; Guo, G.-C.* “Influence of Supramolecular Interactions on Electron-Transfer Photochromism of the Crystalline Adducts of 4,4'-Bipyridineand Carboxylic Acids”, Cryst. Growth Des. 2014, 14, 2527-2531.
7) Wang, L.; Lu, G.; Yang, D.; Wang, J.; Zhu, Z.;Wang, Z.*; Zhou, K.* “Manipulation of the Reducibility of Ceria-Supported Au Catalysts by Interface Engineering”, Chematchem 2013, 5,1308-1312.
6) Zhao, L.; Huang, F.; Lu, G.; Wang, Z.-X.*; Schleyer, P. v.R.* “Why the Mechanisms of Digermyne and Distannyne Reactions with H2 Differ So Greatly”, J. Am. Chem. Soc. 2012, 134, 8856-8868.
5) Lu, G.#; Li, H.#; Zhao,L.; Huang, F.; Schleyer, P. v. R.*; Wang, Z.-X.* “Designing Metal-Free Catalysts by Mimicking Transition-Metal Pincer Templates”, Chem. Eur. J. 2011, 17, 2038-2043. (#equal contributions)
4) Huang, F.; Lu, G.; Zhao, L.; Li, H.; Wang, Z.-X.* “The Catalytic Role of N-Heterocyclic Carbene in a Metal-Free Conversion of Carbon Dioxide into Methanol: A Computational Mechanism Study”, J. Am. Chem. Soc. 2010, 132, 12388-12396.
3) Lu, G.; Zhao, L.; Li, H.; Huang, F.; Wang, Z.-X.* “Reversible Heterolytic Methane Activation of Metal-Free Closed-Shell Molecules: A Computational Proof-of-Principle Study”, Eur. J. Inorg. Chem. 2010, 2010, 2254-2260.
2) Lu, G.; Li, H.; Zhao, L.; Huang, F.; Wang, Z.-X.* “Computationally Designed Metal-Free Hydrogen Activation Site: Reaching the Reactivity of Metal-Ligand Bifunctional Hydrogenation Catalysts”, Inorg. Chem.2010, 49, 295-301.
1) Wang, Z.*; Lu, G.; Li, H.; Zhao, L. “Encumbering the intramolecular pi donation by using a bridge: a strategy for designing metal-free compounds to hydrogen activation”, Chin. Sci. Bull. 2010, 55, 239-245.
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