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Journal
Chemical Reviews
Citation weight
TierA
Weight in force1×
Weightingoff
Weight inputs
Each figure with its percentile among the ranked journals. A is the median, over the academics with a work here, of that academic’s citations to the works this site counts for them - never a Google Scholar profile total. Over every academic of this field, all years, whatever the filters select.
A · academics’ median14,244.0 · 62%
B · citations per work897.6 · 99%
N · works74 · 63%
P · academics49 · 91%
Formula result1.172
From this institution
Under these filters. A work with no citation count is unknown here, never a zero.
Works56
Citations47,271 over 54 of 56 works
Citations per counted work875.4
Weighted citations—
Academics35
Departments7
First seen1986
Works placed per year
56 of these 56 works carry a year; an undated work is in no year. Works placed, under these filters.
Departments publishing there 7
| Department | Works |
|---|---|
| Princeton Chemistry | 14 |
| Yale Chemistry | 14 |
| Penn Chemistry | 12 |
| Brown Chemistry | 9 |
| Cornell Chemistry | 5 |
| Harvard Chemistry | 3 |
| Dartmouth Chemistry | 2 |
A work held by two departments counts once in each, so these add up to more than the works above.
Works placed there 56
| Year | Title | Academics | Citations |
|---|---|---|---|
| 2013 | Visible light photoredox catalysis with transition metal complexes: applications in organic synthesis | David MacMillan | 10,495 |
| 2010 | Rhodium-Catalyzed C-C Bond Formation via Heteroatom-Directed C-H Bond Activation | Jon Ellman | 3,913 |
| 2008 | Metals in neurobiology: probing their chemistry and biology with molecular imaging | Christopher J. Chang | 2,410 |
| 1996 | Synthesis and Applications of Small Molecule Libraries | Jon Ellman | 2,151 |
| 2010 | The thermochemistry of proton-coupled electron transfer reagents and its implications | James Mayer | 1,950 |
| 2006 | Water-splitting chemistry of photosystem II | Gary Brudvig | 1,865 |
| 2022 | Metallaphotoredox: the merger of photoredox and transition metal catalysis | David MacMillan · Marissa Lavagnino | 1,826 |
| 2002 | Nitric oxide donors: chemical activities and biological applications | Ming Xian | 1,708 |
| 2017 | Structural and chemical biology of terpenoid cyclases | David W. Christianson | 1,406 |
| 2010 | Synthesis and Applications of tert-Butanesulfinamide | Jon Ellman | 1,353 |
| 2015 | Molecular catalysts for water oxidation | Gary Brudvig | 1,297 |
| 2018 | In Vivo Photopharmacology | Dirk Trauner | 1,068 |
| 2010 | Theory of coupled electron and proton transfer reactions | Sharon Hammes-Schiffer | 979 |
| 2006 | Structural biology and chemistry of the terpenoid cyclases | David W. Christianson | 955 |
| 2019 | Electrically-transduced chemical sensors based on two-dimensional nanomaterials | Katherine A. Mirica | 856 |
| 2005 | Role of Water in Electron-Initiated Processes and Radical Chemistry: Issues and Scientific Advances | Lai-Sheng Wang · Mark Johnson | 818 |
| 2017 | First-Principles Models for van der Waals Interactions in Molecules: Concepts, Theory, and Applications | Robert A. DiStasio Jr. | 796 |
| 2018 | Oxygen reduction by homogeneous molecular catalysts and electrocatalysts | James Mayer | 742 |
| 2005 | All-Metal Aromaticity and Antiaromaticity | Lai-Sheng Wang | 741 |
| 2017 | Transition-Metal-Catalyzed C–H Bond Addition to Carbonyls, Imines, and Related Polarized π Bonds | Jon Ellman | 726 |
| 2016 | Organic Phase Syntheses of Magnetic Nanoparticles and Their Applications | Shouheng Sun | 696 |
| 2016 | Hydrogenase enzymes and their synthetic models: The role of metal hydrides | Sharon Hammes-Schiffer | 692 |
| 2022 | Photochemical and Electrochemical Applications of Proton-Coupled Electron Transfer in Organic Synthesis | Robert Knowles | 604 |
| 2022 | Electrocatalysis in alkaline media and alkaline membrane-based energy technologies | Robert A. DiStasio Jr. · Sharon Hammes-Schiffer · Yao Yang | 554 |
| 2022 | Free energies of proton-coupled electron transfer reagents and their applications | James Mayer | 526 |
| 2004 | Synthetic Models for Heme-Copper Oxidases. | Eunsuk Kim | 525 |
| 2006 | Protein folding thermodynamics and dynamics: where physics, chemistry and biology meet | Eugene I. Shakhnovich | 487 |
| 2007 | A Chemistry Green Approach to Asymmetric Catalysis: Solvent-Free and Highly Concentrated Reactions | Patrick J. Walsh | 444 |
| 2021 | Magnetic Nanoparticles: Synthesis, Anisotropy, and Applications | Shouheng Sun | 389 |
| 2022 | Theoretical modeling of electrochemical proton-coupled electron transfer | Sharon Hammes-Schiffer | 357 |
| 2005 | Biosynthetic and Biomimetic Electrocyclizations | Dirk Trauner | 354 |
| 1986 | Synthetically useful reactions with metal boride and aluminide catalysts | Bruce Ganem | 351 |
| 2021 | The Biologically Relevant Coordination Chemistry of Iron and Nitric Oxide: Electronic Structure and Reactivity. | Eunsuk Kim | 307 |
| 2014 | Hydrogen tunneling in enzymes and biomimetic models | Sharon Hammes-Schiffer | 298 |
| 2014 | Biological Macromolecules at Interfaces Probed by Chiral Sum Frequency Generation Spectroscopy | E. Chui-Ying Yan | 298 |
| 2015 | Histones: At the Crossroads of Peptide and Protein Chemistry | Tom Muir | 281 |
| 2017 | Methods Utilizing First-Row Transition Metals in Natural Product Total Synthesis. | Timothy Newhouse | 269 |
| 2020 | Quantitative structure–selectivity relationships in enantioselective catalysis: past, present, and future | Andrew Zahrt | 240 |
| 2003 | Use of Achiral and Meso Ligands to Convey Asymmetry in Asymmetric Catalysis | Patrick J. Walsh | 229 |
| 2010 | Introduction: Proton-coupled electron transfer | Sharon Hammes-Schiffer | 228 |
| 2020 | Multicomponent quantum chemistry: Integrating electronic and nuclear quantum effects via the nuclear-electronic orbital method | Sharon Hammes-Schiffer | 216 |
| 2001 | De Novo Proteins From Combinatorial Libraries | Michael Hecht | 145 |
| 2024 | Charge Transfer from Quantum- Confined 0D, 1D, and 2D Nanocrystals | Tianquan “Tim” Lian | 141 |
| 2019 | Paranemic Crossover DNA: There and Back Again | Megan Kizer | 107 |
| 2024 | Aryne chemistry: generation methods and reactions incorporating multiple arynes | David M. Chenoweth | 82 |
| 2019 | Introduction: chemical sensors | Katherine A. Mirica | 80 |
| 2025 | The Impact of Electric Fields on Processes at Electrode Interfaces | Tianquan “Tim” Lian | 74 |
| 2024 | Coherence in chemistry: Foundations and frontiers | Eric Arsenault | 72 |
| 2024 | Opportunities for Therapeutic Modulation of O-GlcNAc | Christina Woo | 50 |
| 2025 | Synthetic lipid biology | Jeremy M. Baskin | 35 |
| 2018 | Introduction: Optogenetics and Photopharmacology | Dirk Trauner | 31 |
| 2020 | Introduction: Reactivity of Nitrogen from the Ground to the Atmosphere | Patrick Holland | 29 |
| 2025 | Walking through Hilbert space with quantum computers | Joonho Lee | 22 |
| 2008 | Introduction: Chemical Approaches to Neurobiology | Dirk Trauner | 3 |
| 2017 | Capturing Chemistry in Action with Electrons: Realization of Atomically Resolved Reaction Dynamics | Peter Weber | — |
| 2019 | Introduction: Computational design of catalysts from molecules to materials | Sharon Hammes-Schiffer | — |
Citations as counted, before any journal weight: 54 of these 56 works carry a count, and a work with no count is unknown, never a zero.