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[해외논문] Polyelemental Nanoparticles as Catalysts for a Li-O2 Battery

ACS nano, v.15 no.3, 2021년, pp.4235 - 4244  

Jung, Woo-Bin (School of Engineering and Applied Sciences , Harvard University , Cambridge , Massachusetts 02138 , United States) ,  Park, Hyunsoo (Department of Chemical and Environmental Engineering , Yale University , New Haven , Connecticut 06520-8286 , United States) ,  Jang, Ji-Soo (Department of Chemical Convergence Materials , University of Science and Technology (UST) , Yuseong-gu, Dajeon , 34113 , Korea) ,  Kim, Do Youb ,  Kim, Dong Wook ,  Lim, Eunsoo ,  Kim, Ju Ye ,  Choi, Sungho ,  Suk, Jungdon ,  Kang, Yongku ,  Kim, Il-Doo ,  Kim, Jihan ,  Wu, Mihye ,  Jung, Hee-Tae

Abstract AI-Helper 아이콘AI-Helper

The development of highly efficient catalysts in the cathodes of rechargeable Li-O2 batteries is a considerable challenge. Polyelemental catalysts consisting of two or more kinds of hybridized catalysts are particularly interesting because the combination of the electrochemical properties of each ca...

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참고문헌 (39)

  1. Bruce, Peter G., Freunberger, Stefan A., Hardwick, Laurence J., Tarascon, Jean-Marie. Li??O2 and Li??S batteries with high energy storage. Nature materials, vol.11, no.1, 19-29.

  2. Zhou, Wei, Zhang, Hongzhang, Nie, Hongjiao, Ma, Yiwen, Zhang, Yining, Zhang, Huamin. Hierarchical Micron-Sized Mesoporous/Macroporous Graphene with Well-Tuned Surface Oxygen Chemistry for High Capacity and Cycling Stability Li–O2 Battery. ACS applied materials & interfaces, vol.7, no.5, 3389-3397.

  3. Debart, A., Bao, J., Armstrong, G., Bruce, P.G.. An O2 cathode for rechargeable lithium batteries: The effect of a catalyst. Journal of power sources, vol.174, no.2, 1177-1182.

  4. Débart, Aurélie, Paterson, Allan J., Bao, Jianli, Bruce, Peter G.. α-MnO2 Nanowires: A Catalyst for the O2 Electrode in Rechargeable Lithium Batteries. Angewandte Chemie. international edition, vol.47, no.24, 4521-4524.

  5. Ogasawara, T., Debart, A., Holzapfel, M., Novak, P., Bruce, P. G.. Rechargeable Li2O2 Electrode for Lithium Batteries. Journal of the American Chemical Society, vol.128, no.4, 1390-1393.

  6. Li, Fujun, Zhang, Tao, Zhou, Haoshen. Challenges of non-aqueous Li–O2 batteries: electrolytes, catalysts, and anodes. Energy & environmental science, vol.6, no.4, 1125-1141.

  7. Black, Robert, Adams, Brian, Nazar, L. F.. Non‐Aqueous and Hybrid Li‐O2 Batteries. Advanced energy materials, vol.2, no.7, 801-815.

  8. Lee, Jin-Hyon, Black, Robert, Popov, Guerman, Pomerantseva, Ekaterina, Nan, Feihong, Botton, Gianluigi A., Nazar, Linda F.. The role of vacancies and defects in Na0.44MnO2 nanowire catalysts for lithium–oxygen batteries. Energy & environmental science, vol.5, no.11, 9558-9565.

  9. Li, Y., Wang, J., Li, X., Geng, D., Banis, M.N., Li, R., Sun, X.. Nitrogen-doped graphene nanosheets as cathode materials with excellent electrocatalytic activity for high capacity lithium-oxygen batteries. Electrochemistry communications, vol.18, 12-15.

  10. Chawla, Neha, Chamaani, Amir, Safa, Meer, El-Zahab, Bilal. Palladium-Filled Carbon Nanotubes Cathode for Improved Electrolyte Stability and Cyclability Performance of Li-O2 Batteries. Journal of the Electrochemical Society : JES, vol.164, no.1, A6303-A6307.

  11. Lu, Yi-Chun, Gasteiger, Hubert A., Parent, Michael C., Chiloyan, Vazrik, Shao-Horn, Yang. The Influence of Catalysts on Discharge and Charge Voltages of Rechargeable Li-Oxygen Batteries. Electrochemical and solid-state letters, vol.13, no.6, A69-.

  12. Lu, Yi-Chun, Xu, Zhichuan, Gasteiger, Hubert A., Chen, Shuo, Hamad-Schifferli, Kimberly, Shao-Horn, Yang. Platinum−Gold Nanoparticles: A Highly Active Bifunctional Electrocatalyst for Rechargeable Lithium−Air Batteries. Journal of the American Chemical Society, vol.132, no.35, 12170-12171.

  13. Antolini, Ermete. Iridium As Catalyst and Cocatalyst for Oxygen Evolution/Reduction in Acidic Polymer Electrolyte Membrane Electrolyzers and Fuel Cells. ACS catalysis, vol.4, no.5, 1426-1440.

  14. Kim, Hyung-Jin, Jung, Sung Chul, Han, Young-Kyu, Oh, Si Hyoung. An atomic-level strategy for the design of a low overpotential catalyst for Li−O2 batteries. Nano energy, vol.13, 679-686.

  15. Cui, Zhiming, Li, Longjun, Manthiram, Arumugam, Goodenough, John B.. Enhanced Cycling Stability of Hybrid Li–Air Batteries Enabled by Ordered Pd3Fe Intermetallic Electrocatalyst. Journal of the American Chemical Society, vol.137, no.23, 7278-7281.

  16. Jung, Woo‐Bin, Jang, Sungwoo, Cho, Soo‐Yeon, Jeon, Hwan‐Jin, Jung, Hee‐Tae. Recent Progress in Simple and Cost‐Effective Top‐Down Lithography for ≈10 nm Scale Nanopatterns: From Edge Lithography to Secondary Sputtering Lithography. Advanced materials, vol.32, no.35, 1907101-.

  17. Berahim, Nurafaliana, Basirun, Wan Jefrey, Leo, Bey Fen, Johan, Mohd Rafie. Synthesis of Bimetallic Gold-Silver (Au-Ag) Nanoparticles for the Catalytic Reduction of 4-Nitrophenol to 4-Aminophenol. Catalysts, vol.8, no.10, 412-.

  18. Zhang, Chao, Jiang, Shou Zhen, Yang, Cheng, Li, Chong Hui, Huo, Yan Yan, Liu, Xiao Yun, Liu, Ai Hua, Wei, Qin, Gao, Sai Sai, Gao, Xing Guo, Man, Bao Yuan. Gold@silver bimetal nanoparticles/pyramidal silicon 3D substrate with high reproducibility for high-performance SERS. Scientific reports, vol.6, 25243-.

  19. Chen, Peng-Cheng, Liu, Xiaolong, Hedrick, James L., Xie, Zhuang, Wang, Shunzhi, Lin, Qing-Yuan, Hersam, Mark C., Dravid, Vinayak P., Mirkin, Chad A.. Polyelemental nanoparticle libraries. Science, vol.352, no.6293, 1565-1569.

  20. Chen, Peng-Cheng, Liu, Guoliang, Zhou, Yu, Brown, Keith A., Chernyak, Natalia, Hedrick, James L., He, Shu, Xie, Zhuang, Lin, Qing-Yuan, Dravid, Vinayak P., O’Neill-Slawecki, Stacy A., Mirkin, Chad A.. Tip-Directed Synthesis of Multimetallic Nanoparticles. Journal of the American Chemical Society, vol.137, no.28, 9167-9173.

  21. Yao, Yonggang, Huang, Zhennan, Xie, Pengfei, Lacey, Steven D., Jacob, Rohit Jiji, Xie, Hua, Chen, Fengjuan, Nie, Anmin, Pu, Tiancheng, Rehwoldt, Miles, Yu, Daiwei, Zachariah, Michael R., Wang, Chao, Shahbazian-Yassar, Reza, Li, Ju, Hu, Liangbing. Carbothermal shock synthesis of high-entropy-alloy nanoparticles. Science, vol.359, no.6383, 1489-1494.

  22. Lacey, Steven D., Dong, Qi, Huang, Zhennan, Luo, Jingru, Xie, Hua, Lin, Zhiwei, Kirsch, Dylan J., Vattipalli, Vivek, Povinelli, Christopher, Fan, Wei, Shahbazian-Yassar, Reza, Wang, Dunwei, Hu, Liangbing. Stable Multimetallic Nanoparticles for Oxygen Electrocatalysis. Nano letters : a journal dedicated to nanoscience and nanotechnology, vol.19, no.8, 5149-5158.

  23. Wu, Yongzhi, Reddy, M.V., Chowdari, B. V. R., Ramakrishna, S.. Long-Term Cycling Studies on Electrospun Carbon Nanofibers as Anode Material for Lithium Ion Batteries. ACS applied materials & interfaces, vol.5, no.22, 12175-12184.

  24. Liu, Dong, Zhang, Xueping, You, Tianyan. Electrochemical Performance of Electrospun Free-Standing Nitrogen-Doped Carbon Nanofibers and Their Application for Glucose Biosensing. ACS applied materials & interfaces, vol.6, no.9, 6275-6280.

  25. Liu, Mingkai, Zhang, Peng, Qu, Zehua, Yan, Lai, Chao, Liu, Tianxi, Zhang, Shanqing. Conductive carbon nanofiber interpenetrated graphene architecture for ultra-stable sodium ion battery. Nature communications, vol.10, no.1, 3917-.

  26. nstitute of Advanced Aerospace Technology, Seoul National University, Seoul 151‐742 (Republic of Korea), Alan G. MacDiarmid NanoTech Institute, University of Texas at Dallas, Richardson, TX 75083‐0688 (USA), Alan G. MacDiarmid NanoTech Institute, University of Texas at Dallas, Richardson, TX 75083‐0688 (USA), Alan G. MacDiarmid NanoTech Institute, University of Texas at Dallas, Richardson, TX 75083‐0688 (USA). Superior Rechargeability and Efficiency of Lithium–Oxygen Batteries: Hierarchical Air Electrode Architecture Combined with a Soluble Catalyst. Angewandte Chemie. international edition, vol.53, no.15, 3926-3931.

  27. Ottakam Thotiyl, Muhammed M., Freunberger, Stefan A., Peng, Zhangquan, Bruce, Peter G.. The Carbon Electrode in Nonaqueous Li–O2 Cells. Journal of the American Chemical Society, vol.135, no.1, 494-500.

  28. Lyu, Zhiyang, Yang, Lijun, Luan, Yanping, Renshaw Wang, Xiao, Wang, Liangjun, Hu, Zehua, Lu, Junpeng, Xiao, Shuning, Zhang, Feng, Wang, Xizhang, Huo, Fengwei, Huang, Wei, Hu, Zheng, Chen, Wei. Effect of oxygen adsorbability on the control of Li2O2 growth in Li-O2 batteries: Implications for cathode catalyst design. Nano energy, vol.36, 68-75.

  29. Lyu, Zhiyang, Zhou, Yin, Dai, Wenrui, Cui, Xinhang, Lai, Min, Wang, Li, Huo, Fengwei, Huang, Wei, Hu, Zheng, Chen, Wei. Recent advances in understanding of the mechanism and control of Li2O2 formation in aprotic Li-O2 batteries. Chemical Society reviews, vol.46, no.19, 6046-6072.

  30. Wu, Mihye, Kim, Do Youb, Park, Hyunsoo, Cho, Kyeong Min, Kim, Ju Ye, Kim, Seon Joon, Choi, Sungho, Kang, Yongku, Kim, Jihan, Jung, Hee-Tae. Formation of toroidal Li 2 O 2 in non-aqueous Li–O 2 batteries with Mo 2 CT x MXene/CNT composite. RSC advances, vol.9, no.70, 41120-41125.

  31. Kresse, G., Furthmüller, J.. Efficient iterative schemes forab initiototal-energy calculations using a plane-wave basis set. Physical review. B, Condensed matter, vol.54, no.16, 11169-11186.

  32. Blöchl, P. E.. Projector augmented-wave method. Physical review. B, Condensed matter, vol.50, no.24, 17953-17979.

  33. Wei, S.-H., Ferreira, L. G., Bernard, James E., Zunger, Alex. Electronic properties of random alloys: Special quasirandom structures. Physical review. B, Condensed matter, vol.42, no.15, 9622-9649.

  34. Zunger, Alex, Wei, S.-H., Ferreira, L. G., Bernard, James E.. Special quasirandom structures. Physical review letters, vol.65, no.3, 353-356.

  35. van de Walle, A., Asta, M., Ceder, G.. The alloy theoretic automated toolkit: A user guide. CALPHAD, computer coupling of phase diagrams and thermochemistry, vol.26, no.4, 539-553.

  36. Zaddach, A. J., Niu, C., Koch, C. C., Irving, D. L.. Mechanical Properties and Stacking Fault Energies of NiFeCrCoMn High-Entropy Alloy. JOM : the journal of the Minerals, Metals & Materials Society, vol.65, no.12, 1780-1789.

  37. Osei-Agyemang, Eric, Balasubramanian, Ganesh. Surface oxidation mechanism of a refractory high-entropy alloy. Npj materials degradation, vol.3, no.1, 20-.

  38. Perdew, John P., Burke, Kieron, Ernzerhof, Matthias. Generalized Gradient Approximation Made Simple. Physical review letters, vol.77, no.18, 3865-3868.

  39. Monkhorst, Hendrik J., Pack, James D.. Special points for Brillouin-zone integrations. Physical review B, Solid state, vol.13, no.12, 5188-5192.

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