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| 1 | 显示文摘 | Radenka Maric Satoshi Ohara Takehisa Fukui | 1999 | Journal of the Electrochemical Society1999,146,6: | 1 |
| 2 | Ni-SDC cermet anode for medium-temperature solid oxide fuel cell with lanthanum gallate electrolyte 显示文摘 | Zhang Xinge Ohara Satoshi Marie Radenka | | Journai of Power Sources0,83,: | 1 |
| 3 | Solid oxide fuel cells with doped lanthanum gallate electrolyte and LaSrCoO3 cathode and Ni-samaria-doped ceria cermet anode显示文摘 | RADENKA Maric SATOSHI Ohara TAKEHISA Fukui | 1999 | J Electrochem Soc1999,146,6: | 1 |
| 4 | Structural and spectroscopic studies of Eu 3+ doped Lu 2 O 3 –Gd 2 O 3 solid solutions显示文摘 | Radenka M. Krsmanovi? Whiffen ?eljka Anti? Adolfo Speghini Mikhail G. Brik Barbora Bártová Marco Bettinelli Miroslav D. Drami?anin | 2014 | Optical Materials2014,,: | 1 |
| 5 | Zn O/Ag hybrid nanocubes in alginate biopolymer:synthesis and properties显示文摘 | LIDIJA V T RADENKA K W SUZANA D B | 2014 | Chemical engineering journal2014,253,1: | 1 |
| 6 | Electrolyte materials for intermediate temperature fuel cells produced via combustion chemical vapor condensation显示文摘 | Mric Radenka Seward Steve Faquv Peter W | 2003 | Electrochemical and Solid-State Letters2003,6,5: | 1 |
| 7 | Solid oxide fuel cells with doped lanthanum gallate electrolyte and LaSrCoO3 cathode, and Nisamaria doped ceria cermet anode 显示文摘 | RADENKA M | 1999 | J Electrochem Soc1999,146,6: | 1 |
| 8 | Ni-SDC cermet anode for medium-temperature solid oxide fuel cell with lanthanum gallate electrolyte显示文摘 | ZHANG Xin-ge SATOSHI O RADENKA M | 1999 | Journal of Power Sources1999,83,: | 1 |
| 9 | Multisite luminescence of rare earth doped TiO2 anatase nanoparticles 显示文摘 | Zeljka Antic Radenka M Krsmanovic Marko G Nikolic Milena Marinovic-Cincovi | 2012 | Materials Chemistry and Physics2012,135,: | 1 |
| 10 | Ni-SDC cermet anode for medium-temperature solid oxide fuel cell with lanthanum gallate electrolyte显示文摘 | Zhang Xinge Ohara Satoshi Maric Radenka | 1999 | Journal of Power Sources1999,83,: | 1 |
| 11 | Interface reactions in the NiO - SDC - LSGM system显示文摘 | Xinge Zhang Satoshi Ohara Radenka Maric | 2000 | Solid State Ionics2000,133,: | 1 |
| 12 | Solid oxide fuel cells with doped lanthanum gallate electrolyte and LaSrCoO3 cathode显示文摘 | Radenka Maric Satoshi Ohara Takehisa Fukui | 1999 | Journal of The Electrochemical Society1999,146,6: | 1 |
| 13 | Cytocompatible cellulose nanofibers from invasive plant species Agave americana L.and Ricinus communis L.:a renewable green source of highly crystalline nanocellulose显示文摘In this study,the fibers of invasive species Agave americana L.and Ricinus communis L.were successfully used for the first time as new sources to produce cytocompatible and highly crystalline cellulose nanofibers.Cellulose nanofibers were obtained by two methods,based on either alkaline or acid hydrolysis.The morphology,chemical composition,and crystallinity of the obtained materials were characterized by scanning electron microscopy(SEM)together with energy-dispersive X-ray spectroscopy(EDX),dynamic light scattering(DLS),X-ray diffraction(XRD),and Fourier transform infrared(FTIR)spectroscopy.The crystallinity indexes(CIs)of the cellulose nanofibers extracted from A.americana and R.communis were very high(94.1%and 92.7%,respectively).Biological studies evaluating the cytotoxic effects of the prepared cellulose nanofibers on human embryonic kidney 293 T(HEK293 T)cells were also performed.The nanofibers obtained using the two different extraction methods were all shown to be cytocompatible in the concentration range assayed(i.e.,0-500μg/mL).Our results showed that the nanocellulose extracted from A.americana and R.communis fibers has high potential as a new renewable green source of highly crystalline cellulose-based cytocompatible nanomaterials for biomedical applications. | Olga L.EVDOKIMOVA Carla S.ALVES Radenka M.KRSMANOVIC WHIFFEN Zaida O.RTEGA Helena TOMáS Joao R.ODRIGUES | 2021 | Journal of Zhejiang University-Science B(Biomedicine & Biotechnology)2021,22,6: | 0 |
| 14 | A Review of Nonaqueous Electrolytes,Binders,and Separators for Lithium-Ion Batteries显示文摘Lithium-ion batteries(LIBs)are the most important electrochemical energy storage devices due to their high energy den-sity,long cycle life,and low cost.During the past decades,many review papers outlining the advantages of state-of-the-art LIBs have been published,and extensive efforts have been devoted to improving their specific energy density and cycle life performance.These papers are primarily focused on the design and development of various advanced cathode and anode electrode materials,with less attention given to the other important components of the battery.The“nonelectroconductive”components are of equal importance to electrode active materials and can significantly affect the performance of LIBs.They could directly impact the capacity,safety,charging time,and cycle life of batteries and thus affect their commercial application.This review summarizes the recent progress in the development of nonaqueous electrolytes,binders,and separa-tors for LIBs and discusses their impact on the battery performance.In addition,the challenges and perspectives for future development of LIBs are discussed,and new avenues for state-of-the-art LIBs to reach their full potential for a wide range of practical applications are outlined. | Jiale Xing Stoyan Bliznakov Leonard Bonville Miodrag Oljaca Radenka Maric | 2022 | Electrochemical Energy Reviews2022,5,4: | 0 |