Editorial design的問題,透過圖書和論文來找解法和答案更準確安心。 我們找到下列線上看、影評和彩蛋懶人包

Editorial design的問題,我們搜遍了碩博士論文和台灣出版的書籍,推薦寫的 Advances in Antenna, Signal Processing, and Microelectronics Engineering 和的 Printed Antennas: Theory and Design都 可以從中找到所需的評價。

另外網站Editorial Designer Jobs - 2022 | Indeed.com也說明:Apply to Editorial Designer jobs now hiring on Indeed.com, the worlds largest job site.

這兩本書分別來自 和所出版 。

世新大學 資訊管理學研究所(含碩專班) 高瑞鴻所指導 高一陳的 植基於5G多型態網路環境下使用區塊鏈技術進行身份驗證之研究 (2022),提出Editorial design關鍵因素是什麼,來自於區塊鏈、5G、Wi-Fi 6、多型態網路、身份驗證。

而第二篇論文國立陽明交通大學 材料科學與工程學系所 曾俊元、黃爾文所指導 古安銘的 異質元素摻雜還原氧化石墨烯電極於儲能裝置之應用研究 (2021),提出因為有 氧化石墨、還原氧化石墨、摻雜鈷的石墨、比電容(單位電容)、超級電容器、能量和功率密度的重點而找出了 Editorial design的解答。

最後網站Editorial Design | Royal College of Art則補充:An introduction to the craft and art of editorial design, which is defined as the presentation of information (text and image) in a coherent, relevant and ...

接下來讓我們看這些論文和書籍都說些什麼吧:

除了Editorial design,大家也想知道這些:

Advances in Antenna, Signal Processing, and Microelectronics Engineering

為了解決Editorial design的問題,作者 這樣論述:

Devendra Kumar Sharma, PhD, is Professor and Dean of the SRM Institute of Science and Technology, Delhi-NCR Campus, Ghaziabad, India. Dr. Sharma has authored many papers in reputed journals and conferences. His research interests are in VLSI interconnects, electronic circuits, digital design, testin

g, and signal processing. Dr. Sharma has participated in many international and national conferences as session chair and as member of steering, advisory, and technical program committees.Rohit Sharma, PhD, is Assistant Professor in the Department of Electronics and Communication Engineering at the

SRM Institute of Science and Technology, Delhi-NCR Campus, Ghaziabad, India. He has published research papers in international and national journals and at professional conferences. He is an editorial board member and reviewer for several journals and has participated in professional conferences as

session chair and on the steering, advisory, and international program committees.Bhadra Pokharel, PhD, is affiliated with the Materials Science and Engineering Program and Department of Physics, Institute of Engineering, Tribhuvan University, India, working on two research projects: 1. Phase Transi

tion Behaviour in Ferroelectric Ceramics, and 2. Nano-porous Activated Carbon.Vinod Kumar, PhD, is Associate Professor in the Department of Electronics and Communication Engineering at SRMIST, Ghaziabad, India. Dr. Kumar has more than 21 years of experience in teaching, research, and industry and ha

s authored many published papers. He has organized and participated in many international and national conferences as a member of the steering, advisory, or international program committees.Raghvendra Kumar, PhD, is Associate Professor in the Computer Science and Engineering Department, Gandhi Insti

tute of Engineering and Technology University, Gunupur, Odisha, India, and Director of the IT and Data Science Department, Vietnam Center of Research in Economics, Management, Environment, Hanoi. Dr. Kumar edits several book series, has published many research papers, has edited over 20 books, and h

as been active in many roles for professional conferences.

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植基於5G多型態網路環境下使用區塊鏈技術進行身份驗證之研究

為了解決Editorial design的問題,作者高一陳 這樣論述:

5G的巨量通訊和低延遲通訊兩個特性,對於企業加速數位轉型時的應用非常重要,尤其是現在已經進入工業4.0時代,網路通訊品質格外重要,結合5G通訊特性及Wi-Fi 6優點的多型態網路,儼然已成為網路新時代的架構,惟本國目前的5G架構因為成本建置考量,尚屬於NSA架構,或許未來硬體更成熟,成本較低時,或許也會採用SA。使用區塊鏈3.0的技術主要是它針對物聯網有提供相當完整及方便的函數庫,而且區塊鏈3.0的特性是不用挖礦,沒有礦工角色,而且越多人使用,驗證速度越快,與區塊鏈1.0或2.0技術不一樣。將傳統的紙本證件,使用區塊鏈3.0技術,將它轉成電子化資料,只要儲存認證完成的交易代碼,就能夠透過此代

碼找到相關原始資料,傳統書面證書或者紙本資料,轉為具有區塊鏈技術架構的數位證書,已經是未來的趨勢。利用IOTA技術提供5G驗證與Wi-Fi 6驗證結合,透過Python 跟C# .Net電腦語言,實作出應用區塊鏈3.0技術來驗證物聯網設備在多型態網路的環境下,可以達到驗證效果,這是本研究的主軸,跳脫傳統的驗證方式,且更具安全性的驗證。

Printed Antennas: Theory and Design

為了解決Editorial design的問題,作者 這樣論述:

Dr. Binod Kumar Kanaujia has been a Professor at the School of Computational and Integrative Sciences, Jawaharlal Nehru University, New Delhi since August 2016. Before joining Jawaharlal Nehru University, he was in the Department of Electronics & Communication Engineering in Ambedkar Institute of Ad

vanced Communication Technologies & Research, Delhi as a Professor from February 2011 and Associate Professor between 2008-2011. Prior to his career in academia, Dr. Kanaujia had worked as Executive Engineer in the R&D division of M/s UPTRON India Ltd. Dr. Surendra Kumar Gupta is a Senior Faculty Me

mber with Department of Electronics Engineering, Ambedkar Institute of Technology, Government of Delhi, India since 2002. He has authored / co-authored around 20 research papers in International Journals / Conferences. His research interests include Computer Aided Design, Wireless Communication and

Micro-strip Antenna. He is a reviewer for several journals of National / International repute and Editorial Board Member of Insight-Communication Journal. He is life member of Indian Society of Technical Education, India and Associate Member of Institute of Engineers, India. Dr. Jugul Kishor is curr

ently working as Associate Professor at the JIMS Engineering Management Technical Campus, Greater Noida, India. His research interests include Design and Modelling of Microstrip and Dielectric Resonator based devices and Metamaterial based antenna including Circularly Polarized Antennas. Dr. Deepak

Gangwar is working as Associate Professor at Bharati Vidyapeeth’s College of Engineering, New Delhi, India. His research areas of interest include Analysis and Design of Metamaterial based Antennas, Ultra-Wideband Antennas, Metamaterial Filters and Frequency Selective Surfaces, Meta surfaces and RCS

reduction.

異質元素摻雜還原氧化石墨烯電極於儲能裝置之應用研究

為了解決Editorial design的問題,作者古安銘 這樣論述:

儲能技術超級電容器的出現為儲能行業的發展提供了巨大的潛力和顯著的優勢。碳基材料,尤其是石墨烯,由於具有蜂窩狀晶格,在儲能應用中備受關注,因其非凡的導電導熱性、彈性、透明性和高比表面積而備受關注,使其成為最重要的儲能材料之一。石墨烯基超級電容器的高能量密度和優異的電/電化學性能的製造是開發大功率能源最緊迫的挑戰之一。在此,我們描述了生產石墨烯基儲能材料的兩種方法,並研究了所製備材料作為超級電容器裝置的電極材料的儲能性能。第一,我們開發了一種新穎、經濟且直接的方法來合成柔性和導電的 還原氧化石墨烯和還原氧化石墨烯/多壁奈米碳管複合薄膜。通過三電極系統,在一些強鹼水性電解質,如 氫氧化鉀、清氧化鋰

和氫氧化鈉中,研究加入多壁奈米碳管對還原氧化石墨烯/多壁奈米碳管複合薄膜電化學性能的影響。通過循環伏安法 (CV)、恆電流充放電 (GCD) 和電化學阻抗譜 (EIS) 探測薄膜的超級電容器行為。通過 X 射線衍射儀 (XRD)、拉曼光譜儀、表面積分析儀 (BET)、熱重分析 (TGA)、場發射掃描電子顯微鏡 (FESEM) 和穿透電子顯微鏡 (TEM) 對薄膜的結構和形態進行研究. 用 10 wt% 多壁奈米碳管(GP10C) 合成的還原氧化石墨烯/多壁奈米碳管薄膜表現出 200 Fg-1 的高比電容,15000 次循環測試後保持92%的比電容,小弛豫時間常數(~194 ms)和在2M氫氧化

鉀電解液中的高擴散係數 (7.8457×10−9 cm2s-1)。此外,以 GP10C 作為陽極和陰極,使用 2M氫氧化鉀作為電解質的對稱超級電容器鈕扣電容在電流密度為 0.1 Ag-1 時表現出 19.4 Whkg-1 的高能量密度和 439Wkg-1 的功率密度,以及良好的循環穩定性:在,0.3 Ag-1 下,10000 次循環後,保持85%的比電容。第二,我們合成了一種簡單、環保、具有成本效益的異質元素(氮、磷和氟)共摻雜氧化石墨烯(NPFG)。通過水熱功能化和冷凍乾燥方法將氧化石墨烯進行還原。此材料具有高比表面積和層次多孔結構。我們廣泛研究了不同元素摻雜對合成的還原氧化石墨烯的儲能性能

的影響。在相同條件下測量比電容,顯示出比第一種方法生產的材料更好的超級電容。以最佳量的五氟吡啶和植酸 (PA) 合成的氮、磷和氟共摻雜石墨烯 (NPFG-0.3) 表現出更佳的比電容(0.5 Ag-1 時為 319 Fg-1),具有良好的倍率性能、較短的弛豫時間常數 (τ = 28.4 ms) 和在 6M氫氧化鉀水性電解質中較高的電解陽離子擴散係數 (Dk+ = 8.8261×10-9 cm2 s–1)。在還原氧化石墨烯模型中提供氮、氟和磷原子替換的密度泛函理論 (DFT) 計算結果可以將能量值 (GT) 從 -673.79 eV 增加到 -643.26 eV,展示了原子級能量如何提高與電解質

的電化學反應。NPFG-0.3 相對於 NFG、PG 和純 還原氧化石墨烯的較佳性能主要歸因於電子/離子傳輸現象的平衡良好的快速動力學過程。我們設計的對稱鈕扣超級電容器裝置使用 NPFG-0.3 作為陽極和陰極,在 1M 硫酸鈉水性電解質中的功率密度為 716 Wkg-1 的功率密度時表現出 38 Whkg-1 的高能量密度和在 6M氫氧化鉀水性電解質中,24 Whkg-1 的能量密度下有499 Wkg-1的功率密度。簡便的合成方法和理想的電化學結果表明,合成的 NPFG-0.3 材料在未來超級電容器應用中具有很高的潛力。