Publications

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40.ÌýDisparate Redox Potentials in Mixed Isomer Electrolytes Reduce Voltage Efficiency of Energy Dense Flow Batteries
Davis, C.M.; Waters, S.E.; Robb, B.H.; Thurston, J.R.; Reber, D.; Marshak, M.P.
BatteriesÌý2023,Ìý9, 573. DOI:

39.ÌýBeyond energy density: flow battery design driven by safety and location
Reber, D.; Jarvis, S. R.; Marshak, M. P.
Energy Adv., 2023, 2, 1357–1365. DOI:Ìý

38.ÌýSulfonated Diels-Alder Poly(phenylene) Membrane for Efficient Ion-Selective Transport in Aqueous Metalorganic and Organic Redox Flow Batteries
Robb, B. H.; George, T. Y.; Davis, C. M.; Tang Z.; Fujimoto, Cy.; Aziz, M. J.; Marshak, M. P.
J. Electrochem. Soc.ÌýÌý2023, 170, 030515. DOI:Ìý

37.ÌýStability of highly soluble ferrocyanides at neutral pH for energy-dense flow batteries
Reber, D.; Thurston, J. R.; Beker, M.; Marshak, M. P.
Cell Reports Phys. Sci.Ìý2023, 4, 101215. DOI:Ìý

36.ÌýThe role of energy density for grid-scale batteries
Reber, D.; Jarvis, S. R.; Marshak, M. P.
ChemRxiv. 2022. DOI:Ìý

35.ÌýRealized potential as neutral pH flow batteries achieve high power densities
Robb, B. H.; Waters, S. E.; Saraidaridis, J. D.; Marshak, M. P.
Cell ReportsÌýPhys. Sci.Ìý2022, 3, 101118. DOI:Ìý

34.ÌýMonitoring Ion Exchange Chromatography with Affordable Flame Emission Spectroscopy
Thurston, J. E.; Marshak, M. P.; Reber, D.
J. Chem. Educ.Ìý2022, 99,Ìý4051–4056. DOI:Ìý

33.ÌýMaximizing Vanadium Deployment in Redox Flow Batteries Through Chelation
Waters, S. E.; Davis, C. M.; Thurston, J. E.; Marshak, M. P.Ìý
J. Am. Chem. Soc.Ìý2022, 144,Ìý17753–17757. DOI:Ìý

32.ÌýHigh Energy Density Chelated Chromium Flow Battery Electrolyte at Neutral pH
Robb, B. H.; Waters, S. E.; Marshak, M. P.Ìý
Chem Asian J. 2022, 17, e202200700.ÌýDOI:Ìý

31.ÌýTransport of Ligand Coordinated Iron and Chromium through Cation-Exchange Membranes
Saraidaridis, J. D.; Darling, R. M.;ÌýYang, Z.;ÌýFortin, M. E.;ÌýShovlin, C.; Robb, B. H.;ÌýWaters, S. E.;ÌýMarshak, M. P.
J. Electrochem. Soc.Ìý2022,Ìý169,Ìý060532. DOI:Ìý

30.ÌýIsolation and characterization of a highly reducing aqueous chromium (II) complex
Waters, S.ÌýE.; Robb, B. H.; Scappaticci, S. J.; Saraidaridis, J. D.; Marshak, M. P.
Inorg. Chem.Ìý2022,Ìý61, 8752–8759. DOI:Ìý

29.ÌýMediating anion-cation interactions to improve aqueous flow battery electrolytes
Reber, D.; Thurston, J. R.; Becker, M.; Pache, G. F.; Wagoner, M. E.; Robb, B. H.; Waters, S. E.; Marshak, M. P.
Appl. Mater. TodayÌý2022,Ìý28,Ìý101512. DOI:Ìý

28.ÌýBismuth Electrocatalyst Enabling Reversible Redox Kinetics of a Chelated Chromium Flow Battery Anolyte
Proctor, A. D.; Robb, B. H.; Saraidaridis, J. D.; Marshak, M. P.
J. Electrochem. Soc.Ìý2022, 169,Ìý030506. DOI:Ìý

27.ÌýHolistic design principles for flow batteries: Cation dependent membrane resistance and active species solubility
Waters, S. E.;ÌýThurston, J. R.; Armstrong, R. W.; Robb, B. H.;ÌýMarshak, M. P.; Reber, D.Ìý
J. Power SourcesÌý2022,Ìý520, 230877. DOI:Ìý

26.ÌýIron Flies Higher
Marshak, M. P.
NatureÌýEnergy2021,Ìý6, 854–855. DOI:Ìý

25.ÌýSynthesis, reactivity, and crystallography of a sterically hindered acyl triflate
Crossman, A. S.; Shi, J. X.; Krajewski, S. M.; Maurer, L. M.; Marshak, M.P.
Tetrahedron2021.Ìý94,Ìý132308. DOI:Ìý
*2021 Editors’ Choice Collection

24.ÌýOpen for bismuth: main group metal-to-ligand charge transfer
Maurer, L. M.; Pearce, O. M.; Maharaj, F. D. R; Brown, N. L.; Amador, C. A.; Damrauer, N. H.; Marshak, M. P.
Inorg. Chem.Ìý2021.Ìý60, 10137–10146 DOI:Ìý

23.ÌýOrganic and Metal-Organic RFBs
Thurston, J. R.; Waters, S. E.; Robb, B. H.; Marshak, M.PÌý
Encyclopedia of Energy StorageÌý2021. DOI:Ìý

22. β-Diketones: Coordination and Application
Crossman, A. S. and Marshak, M. P.
Comprehensive Coordination Chemistry III.Ìý2021, DOI:Ìý

21. Evaluating Aqueous Flow Battery Electrolytes: A Coordinated Approach
Robb, B. H.; Waters, S. E.; Marshak, M. P.
Dalton Trans.,Ìý2020, 49, 16047–16053. DOI:Ìý

20.ÌýMinimizing Oxygen Permeation in Metal-Chelate Flow Batteries
Robb, B. H.; Waters, S. E.; Marshak, M. P.
ECS Trans.Ìý2020,Ìý97, 237–245. DOI:Ìý

19.ÌýEffect of Chelation on Iron-Chromium Redox Flow Batteries
Waters, S. E.; Robb, B. H.; Marshak, M. P.
ACS Energy Lett.Ìý2020,Ìý6,Ìý1758–1762. DOI:Ìý

18.ÌýGroup 4 Organometallics Supported by Sterically Hindered βâ€�Diketonates
Hopkins, E. J.; Krajewski, S. M.; Crossman, A. S.; Maharaj, F. D. R.; Schwanz, L. T.; Marshak, M. P.
Eur. J. Inorg. Chem.Ìý2020, 20, 1951–1959. DOI:Ìý

17.ÌýTitanium-Anthraquinone Material as a New Design Approach for Electrodes in Aqueous Rechargeable Batteries
Maharaj, F. D. R.; Marhsak, M. P.
Energies, 2020, 13, 1722. DOI:Ìý

16.ÌýCopper(II) as a Platform for Probing the Steric Demand of Bulky β-Diketonates
Larson, A. T.; Crossman, A. S.; Krajewski, S. M.; Marshak, M. P.
Inorg. Chem.Ìý2020,Ìý59, 423–432. DOI:Ìý

15.ÌýChelated Chromium Electrolyte Enabling High-Voltage Aqueous Flow Batteries
Robb, B. H.; Farrell, J. M.; Marshak, M. P.Ìý
Joule,Ìý2019. 3, 2503–2512. DOI:Ìý

14.ÌýSterically encumbered β-diketonates and base metal catalysis
Krajewski, S. M.; Crossman, A. S.; Akturk, E. S.; Suhrbier, T.; Scappaticci, S. J.; Staab, M. W.; Marshak, M. P.
Dalton Trans.Ìý2019.Ìý48, 10714–10722. DOI:Ìý

13.ÌýExploring Real-World Applications of Electrochemistry by Constructing a Rechargeable Lithium Ion Battery
Maharaj, F. D. R.; Wu, W.; Zhou, Y,; Schwanz, L. T.; Marshak, M. P.
J. Chem. Educ.Ìý2019,Ìý96, 3014–3017.ÌýDOI:Ìý

12.ÌýSynthesis of Sterically Hindered β-Diketones via Condensation of Acid Chlorides with Enolates
Crossman, A. S.; Larson, A. T.; Shi, J. X.; Krajewski, S. M.; Akturk, E. S.; Marshak, M. P.
J. Org. Chem. 2019. 84, 7434–7442. DOI:Ìý

11.ÌýBulky β-Diketones Enabling New Lewis Acidic Ligand Platforms
Akturk, E. S.; Scappaticci, S. J.; Seals, R. N.; Marshak, M. P.
Inorg. Chem.2017. 56, 11466–11469. DOI:Ìý

10. My trek back to science
Marshak, M. P.
ScienceÌý2015,Ìý349, 1406.ÌýDOI:Ìý

Prior to CU

9.ÌýAnthraquinone Derivatives in Aqueous Flow Batteries
Gerhardt, M. R.; Tong, L.;ÌýGómezâ€�Bombarelli, R.; Chen, Q.; Marshak, M. P.; Galvin, C. J.; Aspuru-Guzik, A.; Gordon, R. G.; Aziz, M. J.
Adv. Energy Mater.Ìý2017.Ìý7, 1601488. DOI:Ìý

8.ÌýAlkaline quinone flow battery
Lin, K.; Chen, Q.; Gerhardt, M. R.; Tong, L.; Kim, S. B.; Eisenach, L.; Valle, A. W.; Hardee, D.; Gordon, R. G.; Aziz, M. J.; Marshak, M. P.
Science2015, 349, 1529–1532. DOI:Ìý

7. Computational design of molecules for an all-quinone redox flow battery
Er, S.; Suh, C.; Marshak, M. P.; Aspuru-Guzik, A.
Chem. Sci.Ìý2015,Ìý6, 885–893.Ìý​DOI:Ìý

6. Cycling of a Quinone-Bromide Flow Battery for Large-Scale Electrochemical Energy Storage
Huskinson, B.; Marshak, M. P.; Gerhardt, M. R.; Aziz, M. J.
ECS Trans.Ìý2014,Ìý61, 27–30.ÌýDOI:Ìý

5.ÌýA metal-free organic-inorganic aqueous flow battery
Huskinson, B.; Marshak, M. P.; Suh, C.; Er, S.; Gerhardt, M. R.; Galvin, C. J.; Chen, X.; Aspuru-Guzik, A.; Gordon, R. G.; Aziz, M. J.
NatureÌý2014,Ìý505, 195–198.ÌýDOI:Ìý

4. Lewis Bases Trigger Intramolecular CH–Bond Activation: (tBu3SiO)2W=NtBu [rlhar2] (tBu3SiO)(κO,κC-tBu2SiOCMe2CH2)HW=NtBu
Marshak, M. P.; Rosenfeld, D. C.; Morris, W. D.; Wolczanski, P. T.; Lobkovsky, E. B.; Cundari, T. R.
Eur. J. Inorg. Chem.Ìý2013,Ìý4056–4067.ÌýDOI:Ìý

3. Chromium(IV) Siloxide
Marshak, M. P.; Nocera, D. G.
Inorg. Chem.Ìý2013,Ìý52, 1173–1175.ÌýDOI:Ìý

2. Cobalt in a Bis-β-diketiminate Environment
Marshak, M. P.; Chambers, M. B.; Nocera, D. G.
Inorg. Chem.Ìý2012,Ìý51, 11190–11197.ÌýDOI:Ìý

1. Thermodynamics, Kinetics, and Mechanism of (silox)3M(olefin) to (silox)3M(alkylidene) Rearrangements (silox = tBu3SiO; M = Nb, Ta)
Hirsekorn, K. F.; Veige, A. S.; Marshak, M. P.; Koldobskaya, Y.; Wolczanski, P. T.; Cundari, T. R.; Lobkovsky, E. B.
J. Am. Chem. Soc.Ìý2005,Ìý127, 4809–4830.ÌýDOI:Ìý