GLORIA

GEOMAR Library Ocean Research Information Access

Your email was sent successfully. Check your inbox.

An error occurred while sending the email. Please try again.

Proceed reservation?

Export
  • 1
    In: ACS Energy Letters, American Chemical Society (ACS), Vol. 5, No. 10 ( 2020-10-09), p. 3203-3211
    Type of Medium: Online Resource
    ISSN: 2380-8195 , 2380-8195
    Language: English
    Publisher: American Chemical Society (ACS)
    Publication Date: 2020
    detail.hit.zdb_id: 2864177-2
    Location Call Number Limitation Availability
    BibTip Others were also interested in ...
  • 2
    In: ECS Meeting Abstracts, The Electrochemical Society, Vol. MA2016-02, No. 5 ( 2016-09-01), p. 715-715
    Abstract: For applications involving transportation and the electricity grid, future energy storage systems will require high energy density, fast charge/discharge times, increased safety, and low cost compared to current Li-ion batteries. Non-aqueous multivalent metal (Mg, Zn, Ca, Al) based cells are a promising advanced energy storage technology due to their higher theoretical volumetric capacity, limited dendrite formation, and low cost. A major need for these systems is the development of compatible electrolytes for both electrodes that show reversible multivalent intercalation cathodes. 1,2 In the case of non-aqueous Mg or Ca ion systems the electrolyte compatibility issues (e.g., low Coulombic efficiency, a high overpotential, and corrosion) hold back the development of Mg or Ca metal batteries. 3 However, non-aqueous Zn 2+ ion chemistry in Zn metal cells with a reversible intercalation cathode is an exception among multivalent metals with a number of promising features including high volumetric capacity, 1 similar ionic radius compared with Li + and Mg 2+ ions, 4 relatively lower activation barrier energy for diffusion in cathode materials (e.g., FePO 4 , CoO 2 and V 2 O 5 ) 5 and highly-efficient reversible Zn deposition behavior on a Zn metal anode with wide electrochemical window. 3 Considering these advantages, a non-aqueous Zn system provides an opportunity to delve into the mechanisms in multivalent-ion cell chemistry and solve the present issues in multivalent cell design and prototyping. 3 In this study, the intercalation chemistry on a variety of cathodes materials (e.g., V 2 O 5 and Mn 2 O 4 ) and reversible deposition/dendritic growth issues on a Zn metal anode have been investigated in various non-aqueous Zn electrolytes. The electrochemical and transport properties―reversible Zn deposition behavior, Coulombic efficiency, anodic stability, ionic conductivity and diffusion coefficient―were characterized utilizing the experimental and computational analysis. Among various Zn metal cells, a hydrated Zn/nanostructured bilayered V 2 O 5 cell with an acetonitrile(AN)-Zn(TFSI) 2 electrolyte demonstrates good reversibility and stability for 120+ cycles with nearly 100% Coulombic efficiency and ~170 mAhg -1 of gravimetric capacity, albeit operating at a cell voltage of 0.7 V. 6 A low crystalline Zn/Nanostructured δ -MnO 2 cell with an AN-Zn(TFSI) 2 electrolyte also shows good reversibility (~100% Coulombic efficiency) and stability for 50+ cycles with ~100 mAhg -1 capacity and relatively higher operating voltage of 1.2 V. On the other hand, Zn dendrite growth studies on a Zn metal anode in non-aqueous Zn electrolytes have been performed under various conditions, including various current densities (0.1, 1.0, and 10 mA cm -2 ) and time (0.2 and 2.0 h cycle -1 ). The cycled Zn metal anodes were characterized using SEM-EDX and X-ray tomography to analyze morphological changes and dendritic growth in both selected regions and overall samples.   References J. Muldoon, C. B. Bucur and T. Gregory, Chem. Rev. 2014, 114 , 11683-11720. H. D. Yoo, I. Shterenberg, Y. Gofer, G. Gershinsky, N. Pour and D. Aurbach, Energy Environ. Sci. 2013, 6 , 2265-2279. S.-D. Han, N. N. Rajput, X. Qu, B. Pan, M. He, M. S. Ferrandon, C. Liao, K. A. Persson and A. K. Burrell, ACS Appl. Mater. Inter. 2016, 8 , 3021-3031. R. D. Shannon, Acta Cryst. 1976, A32 , 751-767. Z. Rong, R. Malik, P. Canepa, G. Gautam, M. Liu, A. Jain, K. Persson and G. Ceder, Chem. Mater. 2015, 27 , 6016-6021. P. Senguttuvan, S.-D. Han, S. Kim, A. L. Lipson, S. Tepavcevic, T. T. Fister, A. K. Burrell and C. S. Johnson, 2016, submitted.  
    Type of Medium: Online Resource
    ISSN: 2151-2043
    Language: Unknown
    Publisher: The Electrochemical Society
    Publication Date: 2016
    detail.hit.zdb_id: 2438749-6
    Location Call Number Limitation Availability
    BibTip Others were also interested in ...
  • 3
    In: ACS Energy Letters, American Chemical Society (ACS), Vol. 4, No. 7 ( 2019-07-12), p. 1528-1534
    Type of Medium: Online Resource
    ISSN: 2380-8195 , 2380-8195
    Language: English
    Publisher: American Chemical Society (ACS)
    Publication Date: 2019
    detail.hit.zdb_id: 2864177-2
    Location Call Number Limitation Availability
    BibTip Others were also interested in ...
  • 4
    In: ECS Meeting Abstracts, The Electrochemical Society, Vol. MA2017-02, No. 5 ( 2017-09-01), p. 507-507
    Abstract: Recently, new energy storage chemistries based on nonaqueous electrolytes and multivalent metals (e.g., Mg, Zn, Ca and Al) have drawn the attention of the researchers as a promising advanced energy storage technology due to their higher theoretical volumetric capacity, limited dendrite formation and low cost. 1 A major developmental need for these systems is the identification of electrolytes compatible with both electrodes while showing reversible deposition/dissolution on an anode and multivalent intercalation into a cathode. 1,2 In the case of nonaqueous Mg or Ca ion-based systems, electrolyte compatibility issues (e.g., low Coulombic efficiency, a high overpotential and corrosion) have held back the development of Mg or Ca metal batteries. 3 However, the nonaqueous Zn 2+ ion chemistry utilized in a Zn metal cells with a reversible intercalation cathode is an exception with a number of promising features including highly-efficient reversible Zn deposition/dissolution on a Zn metal anode with a wide electrochemical window, 3 similar ionic radius compared with Li + and Mg 2+ ions, 4 relatively lower activation barrier energy for diffusion in cathode materials (e.g., FePO 4 , CoO 2 and V 2 O 5 ) 5 and high volumetric capacity. 1 Considering these advantages, a nonaqueous Zn system provides an opportunity to delve into the mechanisms in multivalent-ion cell chemistry and solve the present issues in multivalent cell design and prototyping. 3 In this study, the intercalation chemistry on a variety of cathodes materials (e.g., V 2 O 5 , Mn 2 O 4 and FePO 4 ) have been investigated in various nonaqueous Zn electrolytes. The electrochemical and transport properties of the electrolytes (e.g., reversible Zn deposition, anodic/cathodic stability, ionic conductivity and diffusion coefficient) were characterized utilizing the experimental and computational analysis. 3 Among various Zn metal cells, a Zn/nanostructured bilayered V 2 O 5 cell with a selected acetonitrile(AN)-Zn(TFSI) 2 electrolyte demonstrates good reversibility and stability for 120+ cycles with nearly 100% Coulombic efficiency and ~170 mAhg -1 of gravimetric capacity, albeit operating at a cell voltage of 0.7 V vs. Zn/Zn 2+ . 6 A Zn/nanostructured layered δ -MnO 2 cell with an AN-Zn(TFSI) 2 electrolyte also shows good reversibility (~100% Coulombic efficiency) and stability for 50+ cycles with ~100 mAhg -1 capacity with an operating voltage of 1.2 V vs. Zn/Zn 2+ . 7 By utilizing a combination of analytical tools, we address numerous factors affecting capacity fade, and issues associated with the second phase formation including Mn dissolution in Zn/ δ -MnO 2 cells that have been extensively cycled. 7 References 1. J. Muldoon, C. B. Bucur and T. Gregory, Chem. Rev. 2014, 114 , 11683-11720. 2. H. D. Yoo, I. Shterenberg, Y. Gofer, G. Gershinsky, N. Pour and D. Aurbach, Energy Environ. Sci. 2013, 6 , 2265-2279. 3. S.-D. Han, N. N. Rajput, X. Qu, B. Pan, M. He, M. S. Ferrandon, C. Liao, K. A. Persson and A. K. Burrell, ACS Appl. Mater. Inter. 2016, 8 , 3021-3031. 4. R. D. Shannon, Acta Cryst. 1976, A32 , 751-767. 5. Z. Rong, R. Malik, P. Canepa, G. Gautam, M. Liu, A. Jain, K. Persson and G. Ceder, Chem. Mater. 2015, 27 , 6016-6021. 6. P. Senguttuvan, S.-D. Han, S. Kim, A. L. Lipson, S. Tepavcevic, T. T. Fister, I. D. Bloom, A. K. Burrell and C. S. Johnson, Adv. Energy Mater. 2016, 6 , 1600826. 7. S.-D. Han, S. Kim, D. Li, V. Petkov, H. D. Yoo, P. J. Phillips, H. Wang, J. J. Kim, K. L. More, B. Key, R. F. Klie, J. Cabana, V. Stamenkovic, T. T. Fister, N. M. Markovic, A. K. Burrell, S. Tepavcevic, J. T. Vaughey, 2017, in revision.
    Type of Medium: Online Resource
    ISSN: 2151-2043
    Language: Unknown
    Publisher: The Electrochemical Society
    Publication Date: 2017
    detail.hit.zdb_id: 2438749-6
    Location Call Number Limitation Availability
    BibTip Others were also interested in ...
  • 5
    Online Resource
    Online Resource
    The Electrochemical Society ; 2015
    In:  Journal of The Electrochemical Society Vol. 162, No. 8 ( 2015), p. A1574-A1578
    In: Journal of The Electrochemical Society, The Electrochemical Society, Vol. 162, No. 8 ( 2015), p. A1574-A1578
    Type of Medium: Online Resource
    ISSN: 0013-4651 , 1945-7111
    RVK:
    Language: English
    Publisher: The Electrochemical Society
    Publication Date: 2015
    detail.hit.zdb_id: 2002179-3
    detail.hit.zdb_id: 219244-5
    Location Call Number Limitation Availability
    BibTip Others were also interested in ...
  • 6
    In: Journal of Power Sources, Elsevier BV, Vol. 325 ( 2016-09), p. 646-652
    Type of Medium: Online Resource
    ISSN: 0378-7753
    Language: English
    Publisher: Elsevier BV
    Publication Date: 2016
    detail.hit.zdb_id: 196774-5
    Location Call Number Limitation Availability
    BibTip Others were also interested in ...
  • 7
    In: MRS Proceedings, Springer Science and Business Media LLC, Vol. 1773 ( 2015), p. 27-32
    Abstract: The need for higher energy density batteries has spawned recent renewed interest in alternatives to lithium ion batteries, including multivalent chemistries that theoretically can provide twice the volumetric capacity if two electrons can be transferred per intercalating ion. Initial investigations of these chemistries have been limited to date by the lack of understanding of the compatibility between intercalation electrode materials, electrolytes, and current collectors. This work describes the utilization of hybrid cells to evaluate multivalent cathodes, consisting of high surface area carbon anodes and multivalent nonaqueous electrolytes that are compatible with oxide intercalation electrodes. In particular, electrolyte and current collector compatibility was investigated, and it was found that the carbon and active material play an important role in determining the compatibility of PF 6 -based multivalent electrolytes with carbon-based current collectors. Through the exploration of electrolytes that are compatible with the cathode, new cell chemistries and configurations can be developed, including a magnesium-ion battery with two intercalation host electrodes, which may expand the known Mg-based systems beyond the present state of the art sulfide-based cathodes with organohalide-magnesium based electrolytes.
    Type of Medium: Online Resource
    ISSN: 0272-9172 , 1946-4274
    Language: English
    Publisher: Springer Science and Business Media LLC
    Publication Date: 2015
    detail.hit.zdb_id: 605289-7
    detail.hit.zdb_id: 2451008-7
    Location Call Number Limitation Availability
    BibTip Others were also interested in ...
  • 8
    In: ECS Meeting Abstracts, The Electrochemical Society, Vol. MA2020-02, No. 2 ( 2020-11-23), p. 222-222
    Abstract: Calcium-ion batteries (CIBs) could be an alternative to lithium-ion batteries (LIBs) for certain niche applications due to their theoretically high operating potentials and the high natural abundance of calcium. However, the development of CIBs has been limited by the lack of proper electrolytes and electrode materials due to the difficulties identifying Ca-ion insertion host materials. Previous efforts to develop CIB cathodes have been made mainly based on intercalation materials such as Prussian blue-based materials (1) , layered oxide materials (MoO 3 (2), V 2 O 5 (3), CaCo 2 O 4 (4-5), and layered phosphates (VOPO 4 ·2H 2 O) (6). In this discussion we will be reviewing the state of Ca-ion battery materials and delve into an analysis of several functional polyanionic materials that show promising properties and characteristics as CIB cathodes. The NASICON-type NaV 2 (PO 4 ) 3, derived from de-sodiation of Na 3 V 2 (PO 4 ) 3 , has been shown to reversibly intercalate Ca 2+ -ions (capacity 81 mA h g-1) above 3V (vs. Ca 2+ /Ca) with stable cycling performance. DFT calculations, XAS, XRD, and TEM studies were used to support the insertion of Ca-ions and give insights into the diffusion mechanism of the materials involved (7,8). The presentation will also provide insights into materials design aspects of CIB materials and note areas of need that would benefit the MV battery community. References: (1) Albert L. Lipson, Baofei Pan, Saul H. Lapidus, Chen Liao, John T. Vaughey,Brian J. Ingram “Odyssey of Rechargeable Ca-Ion Batteries: A New Energy Storage System”. Chem. Mat. 2015, 27 , 8442. (2) Marta Cabello, Francisco Nacimiento, Ricardo Alcántara, Pedro Lavela, Carlos Pérez Vicente,José L. Tirado “Applicability of Molybdite as an Electrode Material in Calcium Batteries: A Structural Study of Layer-type Ca x MoO 3 ” Chem. Mat ., 2018, 30, 5853−5861 (3) M. Bervas, L.C. Klein, G.G. Amatucci “Vanadium oxide–propylene carbonate composite as a host for theintercalation of polyvalent cations”. Solid State Ionics 2005 176, 2735–2747. (4) A. Ponrouch, M.R. Palacin “On the road toward calcium-based batteries” Current Opinion in Electrochemistry 2018 , 9 , 1-7. (5) Haesun Park, Yanjie Cui, Sanghyeon Kim, J. T. Vaughey, PeterZapol “Ca Cobaltites as Potential Cathode Materials for Rechargeable Ca-Ion Batteries: Theory and Experiment” J. Phys. Chem. C 2020, 124, 5902−5909 (6) J.J. Wang, S.S. Tan, F.Y. Xiong, R.H. Yu, P.H. Wu, L.M. Cui, Q.Y. An “VOPO4 2H(2)O as a new cathode material for rechargeable Ca-ion batteries” Chem Comm . 2020 56 3805. (7) M.L. Mao, T. Gao, T, S.Y., Hou, C.S. Wang “A critical review of cathodes for rechargeable Mg batteries” Chem Soc Reviews 2018 47 8804. (8) T.N. Chen, G.S. Gautam, W.X. Huang, G. Ceder, G “First-Principles Study of the Voltage Profile and Mobility of Mg Intercalation in a Chromium Oxide Spinel” Chem Mat 2018 30 152.
    Type of Medium: Online Resource
    ISSN: 2151-2043
    Language: Unknown
    Publisher: The Electrochemical Society
    Publication Date: 2020
    detail.hit.zdb_id: 2438749-6
    Location Call Number Limitation Availability
    BibTip Others were also interested in ...
Close ⊗
This website uses cookies and the analysis tool Matomo. More information can be found here...