$\require{mediawiki-texvc}$

연합인증

연합인증 가입 기관의 연구자들은 소속기관의 인증정보(ID와 암호)를 이용해 다른 대학, 연구기관, 서비스 공급자의 다양한 온라인 자원과 연구 데이터를 이용할 수 있습니다.

이는 여행자가 자국에서 발행 받은 여권으로 세계 각국을 자유롭게 여행할 수 있는 것과 같습니다.

연합인증으로 이용이 가능한 서비스는 NTIS, DataON, Edison, Kafe, Webinar 등이 있습니다.

한번의 인증절차만으로 연합인증 가입 서비스에 추가 로그인 없이 이용이 가능합니다.

다만, 연합인증을 위해서는 최초 1회만 인증 절차가 필요합니다. (회원이 아닐 경우 회원 가입이 필요합니다.)

연합인증 절차는 다음과 같습니다.

최초이용시에는
ScienceON에 로그인 → 연합인증 서비스 접속 → 로그인 (본인 확인 또는 회원가입) → 서비스 이용

그 이후에는
ScienceON 로그인 → 연합인증 서비스 접속 → 서비스 이용

연합인증을 활용하시면 KISTI가 제공하는 다양한 서비스를 편리하게 이용하실 수 있습니다.

[해외논문] Polymer-Laminated Ti3C2TX MXene Electrodes for Transparent and Flexible Field-Driven Electronics

ACS nano, v.15 no.5, 2021년, pp.8940 - 8952  

Lee, Seokyeong (Department of Materials Science and Engineering , Yonsei University , Yonsei-ro 50 , Seodaemun-gu, Seoul 03722 , Republic of Korea) ,  Kim, Eui Hyuk (Department of Materials Science and Engineering , Yonsei University , Yonsei-ro 50 , Seodaemun-gu, Seoul 03722 , Republic of Korea) ,  Yu, Seunggun (Insulation Materials Research Center , Korea Electrotechnology Research Institute , Bulmosan-ro 10-gil 12 , Seongsan-gu, Changwon-si , Gyeongsangnam-do 51543 , Korea) ,  Kim, Hyerim (Materials Architecturing Research Centre , Korea Institute of Science and Technology (KIST) , Seoul 02792 , Korea) ,  Park, Chanho (Department of Materials Science and Engineering , Yonsei University , Yonsei-ro 50 , Seodaemun-gu, Seoul 03722 , Republic of Korea) ,  Lee, Seung Won (Department of Materials Science and Engineering , Yonsei University , Yonsei-ro 50 , Seodaemun-gu, Seoul 03722 , Republic of Korea Republic o) ,  Han, Hyowon ,  Jin, Wookyoung ,  Lee, Kyuho ,  Lee, Chang Eun ,  Jang, Jihye ,  Koo, Chong Min ,  Park, Cheolmin

Abstract AI-Helper 아이콘AI-Helper

MXenes (Ti3C2TX) are two-dimensional transition-metal carbides and carbonitrides with high conductivity and optical transparency. However, transparent MXene electrodes with high environmental stability suitable for various flexible organic electronic devices have rarely been demonstrated. By laminat...

Keyword

참고문헌 (60)

  1. Hwang, Byeong-Ung, Zabeeb, Arsalan, Trung, Tran Quang, Wen, Long, Lee, Jae Deuk, Choi, Young-In, Lee, Han-Byeol, Kim, Ju Hyun, Han, Jeon Geon, Lee, Nae-Eung. A transparent stretchable sensor for distinguishable detection of touch and pressure by capacitive and piezoresistive signal transduction. NPG Asia Materials, vol.11, no.1, 23-.

  2. Kim, Eui Hyuk, Han, Hyowon, Yu, Seunggun, Park, Chanho, Kim, Gwangmook, Jeong, Beomjin, Lee, Seung Won, Kim, Jong Sung, Lee, Seokyeong, Kim, Joohee, Park, Jang‐Ung, Shim, Wooyoung, Park, Cheolmin. Interactive Skin Display with Epidermal Stimuli Electrode. Advanced science, vol.6, no.13, 1802351-.

  3. Park, Chanho, Koo, Min, Song, Giyoung, Cho, Suk Man, Kang, Han Sol, Park, Tae Hyun, Kim, Eui Hyuk, Park, Cheolmin. Surface-Conformal Triboelectric Nanopores via Supramolecular Ternary Polymer Assembly. ACS nano, vol.14, no.1, 755-766.

  4. Kim, Joohee, Lee, Mi‐Sun, Jeon, Sangbin, Kim, Minji, Kim, Sungwon, Kim, Kukjoo, Bien, Franklin, Hong, Sung You, Park, Jang‐Ung. Highly Transparent and Stretchable Field‐Effect Transistor Sensors Using Graphene–Nanowire Hybrid Nanostructures. Advanced materials, vol.27, no.21, 3292-3297.

  5. Hwang, Insol, Kim, Hong Nam, Seong, Minho, Lee, Sang‐Hyeon, Kang, Minsu, Yi, Hoon, Bae, Won Gyu, Kwak, Moon Kyu, Jeong, Hoon Eui. Multifunctional Smart Skin Adhesive Patches for Advanced Health Care. Advanced healthcare materials, vol.7, no.15, 1800275-.

  6. Wang, Chuan, Hwang, David, Yu, Zhibin, Takei, Kuniharu, Park, Junwoo, Chen, Teresa, Ma, Biwu, Javey, Ali. User-interactive electronic skin for instantaneous pressure visualization. Nature materials, vol.12, no.10, 899-904.

  7. Zhang, Min, Höfle, Stefan, Czolk, Jens, Mertens, Adrian, Colsmann, Alexander. All-solution processed transparent organic light emitting diodes. Nanoscale, vol.7, no.47, 20009-20014.

  8. Chang, Haixin, Wang, Guangfeng, Yang, An, Tao, Xiaoming, Liu, Xuqing, Shen, Youde, Zheng, Zijian. A Transparent, Flexible, Low‐Temperature, and Solution‐Processible Graphene Composite Electrode. Advanced functional materials, vol.20, no.17, 2893-2902.

  9. Vosgueritchian, Michael, Lipomi, Darren J., Bao, Zhenan. Highly Conductive and Transparent PEDOT:PSS Films with a Fluorosurfactant for Stretchable and Flexible Transparent Electrodes. Advanced functional materials, vol.22, no.2, 421-428.

  10. Hu, Liangbing, Li, Jianfeng, Liu, Jun, Grüner, George, Marks, Tobin. Flexible organic light-emitting diodes with transparent carbon nanotube electrodes: problems and solutions. Nanotechnology, vol.21, no.15, 155202-.

  11. Chien, Yu-Mo, Lefevre, Florent, Shih, Ishiang, Izquierdo, Ricardo. A solution processed top emission OLED with transparent carbon nanotube electrodes. Nanotechnology, vol.21, no.13, 134020-.

  12. Li, J., Hu, L., Wang, L., Zhou, Y., Gruner, G., Marks, T. J.. Organic Light-Emitting Diodes Having Carbon Nanotube Anodes. Nano letters : a journal dedicated to nanoscience and nanotechnology, vol.6, no.11, 2472-2477.

  13. Yin, Zongyou, Sun, Shuangyong, Salim, Teddy, Wu, Shixin, Huang, Xiao, He, Qiyuan, Lam, Yeng Ming, Zhang, Hua. Organic Photovoltaic Devices Using Highly Flexible Reduced Graphene Oxide Films as Transparent Electrodes. ACS nano, vol.4, no.9, 5263-5268.

  14. Wu, Xinkai, Liu, Jun, Wu, Dongqing, Zhao, Yanru, Shi, Xindong, Wang, Jing, Huang, Saijun, He, Gufeng. Highly conductive and uniform graphene oxide modified PEDOT:PSS electrodes for ITO-Free organic light emitting diodes. Journal of materials chemistry. C, Materials for optical and electronic devices, vol.2, no.20, 4044-4050.

  15. Hu, Liangbing, Kim, Han Sun, Lee, Jung-Yong, Peumans, Peter, Cui, Yi. Scalable Coating and Properties of Transparent, Flexible, Silver Nanowire Electrodes. ACS nano, vol.4, no.5, 2955-2963.

  16. De, Sukanta, Higgins, Thomas M., Lyons, Philip E., Doherty, Evelyn M., Nirmalraj, Peter N., Blau, Werner J., Boland, John J., Coleman, Jonathan N.. Silver Nanowire Networks as Flexible, Transparent, Conducting Films: Extremely High DC to Optical Conductivity Ratios. ACS nano, vol.3, no.7, 1767-1774.

  17. Park, Ick‐Joon, Kim, Tae In, Yoon, Taeshik, Kang, Sumin, Cho, Hyunsu, Cho, Nam Sung, Lee, Jeong‐Ik, Kim, Taek‐Soo, Choi, Sung‐Yool. Flexible and Transparent Graphene Electrode Architecture with Selective Defect Decoration for Organic Light‐Emitting Diodes. Advanced functional materials, vol.28, no.10, 1704435-.

  18. Lee, Do Hee, Yun, Hyung Duk, Jung, Eui Dae, Chu, Jae Hwan, Nam, Yun Seok, Song, Seunguk, Seok, Shi-Hyun, Song, Myoung Hoon, Kwon, Soon-Yong. Ultrathin Graphene Intercalation in PEDOT:PSS/Colorless Polyimide-Based Transparent Electrodes for Enhancement of Optoelectronic Performance and Operational Stability of Organic Devices. ACS applied materials & interfaces, vol.11, no.23, 21069-21077.

  19. Liang, Jiajie, Li, Lu, Tong, Kwing, Ren, Zhi, Hu, Wei, Niu, Xiaofan, Chen, Yongsheng, Pei, Qibing. Silver Nanowire Percolation Network Soldered with Graphene Oxide at Room Temperature and Its Application for Fully Stretchable Polymer Light-Emitting Diodes. ACS nano, vol.8, no.2, 1590-1600.

  20. McCarthy, Joseph E., Hanley, Cormac A., Brennan, Lorcan J., Lambertini, Vito G., Gun'ko, Yurii K.. Fabrication of highly transparent and conducting PEDOT:PSS films using a formic acid treatment. Journal of materials chemistry. C, Materials for optical and electronic devices, vol.2, no.4, 764-770.

  21. Rivnay, Jonathan, Inal, Sahika, Collins, Brian A., Sessolo, Michele, Stavrinidou, Eleni, Strakosas, Xenofon, Tassone, Christopher, Delongchamp, Dean M., Malliaras, George G.. Structural control of mixed ionic and electronic transport in conducting polymers. Nature communications, vol.7, 11287-.

  22. Naguib, Michael, Kurtoglu, Murat, Presser, Volker, Lu, Jun, Niu, Junjie, Heon, Min, Hultman, Lars, Gogotsi, Yury, Barsoum, Michel W.. Two‐Dimensional Nanocrystals Produced by Exfoliation of Ti3AlC2. Advanced materials, vol.23, no.37, 4248-4253.

  23. Zhang, Chuanfang (John), Nicolosi, Valeria. Graphene and MXene-based transparent conductive electrodes and supercapacitors. Energy storage materials, vol.16, 102-125.

  24. Zhang, Chuanfang (John). Interfacial assembly of two-dimensional MXenes. Journal of energy chemistry : JEC, vol.60, 417-434.

  25. Li, Neng, Peng, Jiahe, Ong, Wee-Jun, Ma, Tingting, Arramel,, Zhang, Peng, Jiang, Jizhou, Yuan, Xiaofang, Zhang, Chuanfang (John). MXenes: An Emerging Platform for Wearable Electronics and Looking Beyond. Matter, vol.4, no.2, 377-407.

  26. Ahn, Soyeong, Han, Tae‐Hee, Maleski, Kathleen, Song, Jinouk, Kim, Young‐Hoon, Park, Min‐Ho, Zhou, Huanyu, Yoo, Seunghyup, Gogotsi, Yury, Lee, Tae‐Woo. A 2D Titanium Carbide MXene Flexible Electrode for High‐Efficiency Light‐Emitting Diodes. Advanced materials, vol.32, no.23, 2000919-.

  27. Lee, Seokyeong, Kim, Eui Hyuk, Yu, Seunggun, Kim, Hyerim, Park, Chanho, Park, Tae Hyun, Han, Hyowon, Lee, Seung Won, Baek, Soyeon, Jin, Wookyoung, Koo, Chong Min, Park, Cheolmin. Polymer Light‐Emitting Diodes: Alternating‐Current MXene Polymer Light‐Emitting Diodes (Adv. Funct. Mater. 32/2020). Advanced functional materials, vol.30, no.32, 2070212-.

  28. Zhang, Chuanfang (John), Anasori, Babak, Seral‐Ascaso, Andrés, Park, Sang‐Hoon, McEvoy, Niall, Shmeliov, Aleksey, Duesberg, Georg S., Coleman, Jonathan N., Gogotsi, Yury, Nicolosi, Valeria. Transparent, Flexible, and Conductive 2D Titanium Carbide (MXene) Films with High Volumetric Capacitance. Advanced materials, vol.29, no.36, 1702678-.

  29. Abdolhosseinzadeh, Sina, Heier, Jakob, Zhang, Chuanfang (John). Printing and coating MXenes for electrochemical energy storage devices. Journal of physics. Energy, vol.2, no.3, 031004-.

  30. Zhang, Chuanfang John, Pinilla, Sergio, McEvoy, Niall, Cullen, Conor P., Anasori, Babak, Long, Edmund, Park, Sang-Hoon, Seral-Ascaso, Andrés, Shmeliov, Aleksey, Krishnan, Dileep, Morant, Carmen, Liu, Xinhua, Duesberg, Georg S., Gogotsi, Yury, Nicolosi, Valeria. Oxidation Stability of Colloidal Two-Dimensional Titanium Carbides (MXenes). Chemistry of materials : a publication of the American Chemical Society, vol.29, no.11, 4848-4856.

  31. Ghassemi, H., Harlow, W., Mashtalir, O., Beidaghi, M., Lukatskaya, M. R., Gogotsi, Y., Taheri, M. L.. In situ environmental transmission electron microscopy study of oxidation of two-dimensional Ti3C2and formation of carbon-supported TiO2. Journal of materials chemistry. A, Materials for energy and sustainability, vol.2, no.35, 14339-.

  32. Naguib, Michael, Mashtalir, Olha, Lukatskaya, Maria R., Dyatkin, Boris, Zhang, Chuanfang, Presser, Volker, Gogotsi, Yury, Barsoum, Michel W.. One-step synthesis of nanocrystalline transition metal oxides on thin sheets of disordered graphitic carbon by oxidation of MXenes. Chemical communications : Chem comm, vol.50, no.56, 7420-7423.

  33. Jastrzębska, A M, Szuplewska, A, Rozmysłowska-Wojciechowska, A, Chudy, M, Olszyna, A, Birowska, M, Popielski, M, Majewski, J A, Scheibe, B, Natu, V, Barsoum, M W. On tuning the cytotoxicity of Ti3C2 (MXene) flakes to cancerous and benign cells by post-delamination surface modifications. 2d materials, vol.7, no.2, 025018-.

  34. Lee, Yonghee, Kim, Seon Joon, Kim, Yong-Jae, Lim, Younghwan, Chae, Yoonjeong, Lee, Byeong-Joo, Kim, Young-Tae, Han, Hee, Gogotsi, Yury, Ahn, Chi Won. Oxidation-resistant titanium carbide MXene films. Journal of materials chemistry. A, Materials for energy and sustainability, vol.8, no.2, 573-581.

  35. Chen, Winston Yenyu, Lai, Sz-Nian, Yen, Chao-Chun, Jiang, Xiaofan, Peroulis, Dimitrios, Stanciu, Lia A.. Surface Functionalization of Ti3C2Tx MXene with Highly Reliable Superhydrophobic Protection for Volatile Organic Compounds Sensing. ACS nano, vol.14, no.9, 11490-11501.

  36. Kim, Daesin, Ko, Tae Yun, Kim, Hyerim, Lee, Gun Hee, Cho, Sangho, Koo, Chong Min. Nonpolar Organic Dispersion of 2D Ti3C2Tx MXene Flakes via Simultaneous Interfacial Chemical Grafting and Phase Transfer Method. ACS nano, vol.13, no.12, 13818-13828.

  37. Park, Tae Hyun, Yu, Seunggun, Koo, Min, Kim, Hyerim, Kim, Eui Hyuk, Park, Jung-Eun, Ok, Byeori, Kim, Byeonggwan, Noh, Sung Hyun, Park, Chanho, Kim, Eunkyoung, Koo, Chong Min, Park, Cheolmin. Shape-Adaptable 2D Titanium Carbide (MXene) Heater. ACS nano, vol.13, no.6, 6835-6844.

  38. Liu, Xiaohui, Dong, Guifang, Duan, Lian, Wang, Liduo, Qiu, Yong. High performance low-voltage organic phototransistors: interface modification and the tuning of electrical, photosensitive and memory properties. Journal of materials chemistry, vol.22, no.23, 11836-11842.

  39. Kim, Seon Joon, Koh, Hyeong-Jun, Ren, Chang E., Kwon, Ohmin, Maleski, Kathleen, Cho, Soo-Yeon, Anasori, Babak, Kim, Choong-Ki, Choi, Yang-Kyu, Kim, Jihan, Gogotsi, Yury, Jung, Hee-Tae. Metallic Ti3C2Tx MXene Gas Sensors with Ultrahigh Signal-to-Noise Ratio. ACS nano, vol.12, no.2, 986-993.

  40. Low, Jingxiang, Zhang, Liuyang, Tong, Tong, Shen, Baojia, Yu, Jiaguo. TiO2/MXene Ti3C2 composite with excellent photocatalytic CO2 reduction activity. Journal of catalysis, vol.361, 255-266.

  41. ShahThese authors contributed equally to the manuscript., S. A., Habib, T., Gao, H., Gao, P., Sun, W., Green, M. J., Radovic, M.. Template-free 3D titanium carbide (Ti3C2Tx) MXene particles crumpled by capillary forces. Chemical communications : Chem comm, vol.53, no.2, 400-403.

  42. Son, Byeong-Geun, Je, So Yeon, Kim, Hyo Jin, Jeong, Jae Kyeong. Modification of a polymer gate insulator by zirconium oxide doping for low temperature, high performance indium zinc oxide transistors. RSC advances, vol.4, no.86, 45742-45748.

  43. Lyu, Benzheng, Choi, Yongsuk, Jing, Hongyue, Qian, Chuan, Kang, Hyunseok, Lee, Sungjoo, Cho, Jeong Ho. 2D MXene–TiO2 Core–Shell Nanosheets as a Data‐Storage Medium in Memory Devices. Advanced materials, vol.32, no.17, 1907633-.

  44. Tang, Xiao, Guo, Xin, Wu, Wenjian, Wang, Guoxiu. 2D Metal Carbides and Nitrides (MXenes) as High‐Performance Electrode Materials for Lithium‐Based Batteries. Advanced energy materials, vol.8, no.33, 1801897-.

  45. Marlina, Dian, Park, Yeonju, Hoshina, Hiromichi, Ozaki, Yukihiro, Jung, Young Mee, Sato, Harumi. A Study on Blend Ratio-dependent Far-IR and Low-frequency Raman Spectra and WAXD Patterns of Poly(3-hydroxybutyrate)/ poly(4-vinylphenol) Using Homospectral and Heterospectral Two-dimensional Correlation Spectroscopy. Analytical sciences : The International Journal of the Japan Society for Analytical Chemistry, vol.36, no.6, 731-735.

  46. Xie, XiaoJing, Zhu, YuMei, Li, Fang, Zhou, XiaoWei, Xue, Tao. Preparation and characterization of Ti3C2Tx with SERS properties. Science China. Technological sciences, vol.62, no.7, 1202-1209.

  47. Matsushita, Akira, Ren, Yanzhi, Matsukawa, Kimihiro, Inoue, Hiroshi, Minami, Yukio, Noda, Isao, Ozaki, Yukihiro. Two-dimensional Fourier-transform Raman and near-infrared correlation spectroscopy studies of poly(methyl methacrylate) blends : 1. Immiscible blends of poly(methyl methacrylate) and atactic polystyrene. Vibrational spectroscopy : an international journal devoted to applications of infrared and Raman spectroscopy, vol.24, no.2, 171-180.

  48. Lotfi, Roghayyeh, Naguib, Michael, Yilmaz, Dundar E., Nanda, Jagjit, van Duin, Adri C. T.. A comparative study on the oxidation of two-dimensional Ti3C2MXene structures in different environments. Journal of materials chemistry. A, Materials for energy and sustainability, vol.6, no.26, 12733-12743.

  49. Cho, Sung Hwan, Kim, Eui Hyuk, Jeong, Beomjin, Lee, Ju Han, Song, Giyoung, Hwang, Ihn, Cho, Himchan, Kim, Kang Lib, Yu, Seunggun, Kim, Richard Hahnkee, Lee, Seung Won, Lee, Tae-Woo, Park, Cheolmin. Solution-processed electron-only tandem polymer light-emitting diodes for broad wavelength light emission. Journal of materials chemistry. C, Materials for optical and electronic devices, vol.5, no.1, 110-117.

  50. Lee, Ju Han, Jeong, Beomjin, Cho, Sung Hwan, Kim, Eui Hyuk, Park, Cheolmin. Non‐Volatile Polymer Electroluminescence Programmable with Ferroelectric Field‐Induced Charge Injection Gate. Advanced functional materials, vol.26, no.30, 5391-5399.

  51. Kim, Dong-Jun, Jeon, Chul-Yeon, Choi, Jong-Guk, Lee, Jae Wook, Surabhi, Srivathsava, Jeong, Jong-Ryul, Lee, Kyung-Jin, Park, Byong-Guk. Observation of transverse spin Nernst magnetoresistance induced by thermal spin current in ferromagnet/non-magnet bilayers. Nature communications, vol.8, no.1, 1400-.

  52. Lee, Seung Won, Cho, Sung Hwan, Kang, Han Sol, Kim, Gwangmook, Kim, Jong Sung, Jeong, Beomjin, Kim, Eui Hyuk, Yu, Seunggun, Hwang, Ihn, Han, Hyowon, Park, Tae Hyun, Jung, Seok-Heon, Lee, Jin Kyun, Shim, Wooyoung, Park, Cheolmin. Electroluminescent Pressure-Sensing Displays. ACS applied materials & interfaces, vol.10, no.16, 13757-13766.

  53. Kim, Jong Sung, Cho, Sung Hwan, Kim, Kang Lib, Kim, Gwangmook, Lee, Seung Won, Kim, Eui Hyuk, Jeong, Beomjin, Hwang, Ihn, Han, Hyowon, Shim, Wooyoung, Lee, Tae-Woo, Park, Cheolmin. Flexible artificial synesthesia electronics with sound-synchronized electroluminescence. Nano energy, vol.59, 773-783.

  54. Kim, Sukyeong, Han, Sangbin, Kim, Yeongjae, Kim, Hyeon-Seop, Gu, Young-Ran, Kang, Donghyun, Cho, Yongsik, Kim, Hyeonkyeong, Lee, Jeeyeon, Seo, Yeyoung, Chang, Moon Jong, Chang, Chong Bum, Kang, Seung-Baik, Kim, Jin-Hong. Tankyrase inhibition preserves osteoarthritic cartilage by coordinating cartilage matrix anabolism via effects on SOX9 PARylation. Nature communications, vol.10, no.1, 4898-.

  55. Cho, Sung Hwan, Lee, Seung Won, Hwang, Ihn, Kim, Jong Sung, Jeong, Beomjin, Kang, Han Sol, Kim, Eui Hyuk, Kim, Kang Lib, Park, Chanho, Park, Cheolmin. Self‐Healing Materials: Shape‐Deformable Self‐Healing Electroluminescence Displays (Advanced Optical Materials 3/2019). Advanced optical materials, vol.7, no.3, 1970012-.

  56. Jiang, Chengmei, Wu, Cui, Li, Xunjia, Yao, Yao, Lan, Lingyi, Zhao, Fengnian, Ye, Zunzhong, Ying, Yibin, Ping, Jianfeng. All-electrospun flexible triboelectric nanogenerator based on metallic MXene nanosheets. Nano energy, vol.59, 268-276.

  57. Lee, Kang Hyuck, Zhang, Yi-Zhou, Jiang, Qiu, Kim, Hyunho, Alkenawi, Abdulkader A., Alshareef, Husam N.. Ultrasound-Driven Two-Dimensional Ti3C2Tx MXene Hydrogel Generator. ACS nano, vol.14, no.3, 3199-3207.

  58. Kaur, Navjot, Pal, Kaushik. Triboelectric Nanogenerators for Mechanical Energy Harvesting. Energy technology : generation, conversion, storage, distribution, vol.6, no.6, 958-997.

  59. Zou, Haiyang, Zhang, Ying, Guo, Litong, Wang, Peihong, He, Xu, Dai, Guozhang, Zheng, Haiwu, Chen, Chaoyu, Wang, Aurelia Chi, Xu, Cheng, Wang, Zhong Lin. Quantifying the triboelectric series. Nature communications, vol.10, no.1, 1427-.

  60. Shahzad, Faisal, Alhabeb, Mohamed, Hatter, Christine B., Anasori, Babak, Man Hong, Soon, Koo, Chong Min, Gogotsi, Yury. Electromagnetic interference shielding with 2D transition metal carbides (MXenes). Science, vol.353, no.6304, 1137-1140.

LOADING...

활용도 분석정보

상세보기
다운로드
내보내기

활용도 Top5 논문

해당 논문의 주제분야에서 활용도가 높은 상위 5개 콘텐츠를 보여줍니다.
더보기 버튼을 클릭하시면 더 많은 관련자료를 살펴볼 수 있습니다.

관련 콘텐츠

이 논문과 함께 이용한 콘텐츠

유발과제정보 저작권 관리 안내
섹션별 컨텐츠 바로가기

AI-Helper ※ AI-Helper는 오픈소스 모델을 사용합니다.

AI-Helper 아이콘
AI-Helper
안녕하세요, AI-Helper입니다. 좌측 "선택된 텍스트"에서 텍스트를 선택하여 요약, 번역, 용어설명을 실행하세요.
※ AI-Helper는 부적절한 답변을 할 수 있습니다.

선택된 텍스트

맨위로