World's Best Scientists 2026 revealed!
sang yoon lee

sang yoon lee

D-Index & Metrics

Electronics and Electrical Engineering

D-Index
56
Citations
31012
World Ranking
2021
National Ranking
53

Materials Science

D-Index
56
Citations
31154
World Ranking
8105
National Ranking
340

sang yoon lee publication distribution in Electronics and Electrical Engineering in 2026

The chart shows the distribution of publications by all Research.com ranked scientists in the field of Electronics and Electrical Engineering in 2026. The highlighted bar marks where sang yoon lee sits on this spectrum.

34–53 publications: 24 scientists 54–73 publications: 52 scientists 74–93 publications: 114 scientists 94–113 publications: 203 scientists 114–133 publications: 269 scientists 134–153 publications: 355 scientists 154–173 publications: 403 scientists 174–193 publications: 445 scientists 194–213 publications: 430 scientists 214–233 publications: 431 scientists 234–253 publications: 399 scientists 254–273 publications: 366 scientists 274–293 publications: 335 scientists 294–313 publications: 300 scientists 314–333 publications: 276 scientists 334–353 publications: 250 scientists 354–373 publications: 214 scientists 374–393 publications: 187 scientists 394–413 publications: 152 scientists 414–433 publications: 169 scientists 434–453 publications: 147 scientists 454–473 publications: 111 scientists 474–493 publications: 117 scientists 494–513 publications: 103 scientists 514–533 publications: 99 scientists 534–553 publications: 92 scientists 554–573 publications: 75 scientists 574–593 publications: 58 scientists 594–613 publications: 69 scientists 614–633 publications: 50 scientists 634–653 publications: 62 scientists 654–673 publications: 54 scientists 674–693 publications: 44 scientists 694–713 publications: 37 scientists 714–733 publications: 28 scientists 734–753 publications: 26 scientists 754–773 publications: 26 scientists 774–793 publications: 19 scientists 794–813 publications: 23 scientists 814–833 publications: 20 scientists 834–853 publications: 16 scientists 854–873 publications: 20 scientists 874–893 publications: 11 scientists 894–913 publications: 11 scientists 914–933 publications: 16 scientists 934–953 publications: 13 scientists 954–973 publications: 10 scientists 974–993 publications: 11 scientists 994–1,013 publications: 9 scientists 1,014–1,033 publications: 9 scientists 1,034–1,053 publications: 10 scientists 1,054–1,064 publications: 6 scientists 1,065+ publications: 99 scientists
34 publications 1,065+

This scientist: 240 publications — 42nd percentile

42% of scientists in this discipline score the same or lower.

The last bar groups every scientist with 1,065 publications or more.

sang yoon lee D-index placement in Electronics and Electrical Engineering in 2026

The chart shows the D-index (discipline H-index) distribution of Electronics and Electrical Engineering scientists ranked by Research.com in 2026. The highlighted bar marks where sang yoon lee sits on this spectrum.

30 D-Index: 178 scientists 31 D-Index: 257 scientists 32 D-Index: 263 scientists 33 D-Index: 262 scientists 34 D-Index: 244 scientists 35 D-Index: 236 scientists 36 D-Index: 211 scientists 37 D-Index: 220 scientists 38 D-Index: 214 scientists 39 D-Index: 214 scientists 40 D-Index: 205 scientists 41 D-Index: 187 scientists 42 D-Index: 194 scientists 43 D-Index: 201 scientists 44 D-Index: 155 scientists 45 D-Index: 189 scientists 46 D-Index: 148 scientists 47 D-Index: 160 scientists 48 D-Index: 134 scientists 49 D-Index: 130 scientists 50 D-Index: 141 scientists 51 D-Index: 156 scientists 52 D-Index: 108 scientists 53 D-Index: 130 scientists 54 D-Index: 112 scientists 55 D-Index: 97 scientists 56 D-Index: 111 scientists 57 D-Index: 102 scientists 58 D-Index: 108 scientists 59 D-Index: 120 scientists 60 D-Index: 103 scientists 61 D-Index: 93 scientists 62 D-Index: 92 scientists 63 D-Index: 74 scientists 64 D-Index: 77 scientists 65 D-Index: 73 scientists 66 D-Index: 64 scientists 67 D-Index: 69 scientists 68 D-Index: 60 scientists 69 D-Index: 39 scientists 70 D-Index: 57 scientists 71 D-Index: 59 scientists 72 D-Index: 46 scientists 73 D-Index: 49 scientists 74 D-Index: 38 scientists 75 D-Index: 35 scientists 76 D-Index: 32 scientists 77 D-Index: 35 scientists 78 D-Index: 31 scientists 79 D-Index: 22 scientists 80 D-Index: 34 scientists 81 D-Index: 31 scientists 82 D-Index: 34 scientists 83 D-Index: 23 scientists 84 D-Index: 18 scientists 85 D-Index: 30 scientists 86 D-Index: 19 scientists 87 D-Index: 19 scientists 88 D-Index: 20 scientists 89 D-Index: 8 scientists 90 D-Index: 17 scientists 91 D-Index: 7 scientists 92 D-Index: 14 scientists 93 D-Index: 9 scientists 94 D-Index: 15 scientists 95 D-Index: 10 scientists 96 D-Index: 12 scientists 97 D-Index: 10 scientists 98 D-Index: 10 scientists 99 D-Index: 12 scientists 100 D-Index: 16 scientists 101 D-Index: 5 scientists 102 D-Index: 7 scientists 103 D-Index: 7 scientists 104 D-Index: 8 scientists 105 D-Index: 9 scientists 106 D-Index: 13 scientists 107 D-Index: 4 scientists 108 D-Index: 5 scientists 109 D-Index: 10 scientists 110 D-Index: 8 scientists 111+ D-Index: 96 scientists
30 D-Index 111+

This scientist: 56 D-Index — 71st percentile

71% of scientists in this discipline score the same or lower.

The last bar groups every scientist with 111 D-Index or more.

Overview

What is he best known for?

The fields of study he is best known for:

  • Organic chemistry
  • Semiconductor
  • Optics

Sang Yoon Lee mainly focuses on Optoelectronics, Thin-film transistor, Transistor, Electrode and Nanotechnology. His work deals with themes such as Active matrix, AMOLED, Passivation, OLED and Gate oxide, which intersect with Optoelectronics. Sang Yoon Lee interconnects Threshold voltage, Oxide and Electrical engineering, Dielectric in the investigation of issues within Thin-film transistor.

His Transistor study combines topics in areas such as Quantum dot, Semiconductor and Charge carrier. His work in the fields of Graphene, Substrate and Quantum dot display overlaps with other areas such as Fabrication and High resolution. Sang Yoon Lee combines subjects such as Bilayer graphene, Monolayer and Potential applications of graphene with his study of Graphene oxide paper.

His most cited work include:

  • Large-scale pattern growth of graphene films for stretchable transparent electrodes (8264 citations)
  • High-mobility and low-power thin-film transistors based on multilayer MoS2 crystals (1146 citations)
  • 42.2: World's Largest (15‐inch) XGA AMLCD Panel Using IGZO Oxide TFT (1114 citations)

What are the main themes of his work throughout his whole career to date?

Optoelectronics, Thin-film transistor, Layer, Transistor and Electrode are his primary areas of study. The concepts of his Optoelectronics study are interwoven with issues in Thin film, Electronic engineering, Substrate and Electrical engineering. The Thin-film transistor study combines topics in areas such as Organic semiconductor, Organic field-effect transistor, Dielectric, Threshold voltage and Chemical engineering.

His Transistor research is multidisciplinary, relying on both Stress and Nanotechnology. Sang Yoon Lee works on Nanotechnology which deals in particular with Graphene. His work carried out in the field of Electrode brings together such families of science as Monolayer, Oxide, Active layer and Display device.

He most often published in these fields:

  • Optoelectronics (60.20%)
  • Thin-film transistor (42.52%)
  • Layer (19.39%)

What were the highlights of his more recent work (between 2012-2020)?

  • Optoelectronics (60.20%)
  • Transistor (19.39%)
  • Semiconductor (9.52%)

In recent papers he was focusing on the following fields of study:

Sang Yoon Lee spends much of his time researching Optoelectronics, Transistor, Semiconductor, Thin-film transistor and Optics. His Optoelectronics research integrates issues from Thin film and OLED. The various areas that Sang Yoon Lee examines in his Transistor study include Layer, Nanotechnology, Hydrogen and Electrode.

His multidisciplinary approach integrates Nanotechnology and Bridge in his work. In his study, which falls under the umbrella issue of Semiconductor, Electronic component and Stretchable electronics is strongly linked to Composite material. His Thin-film transistor research incorporates elements of Elastomer, Moiety, Polymer, Ion and Chemical engineering.

Between 2012 and 2020, his most popular works were:

  • Printable organometallic perovskite enables large-area, low-dose X-ray imaging (266 citations)
  • Mechanically Durable and Highly Stretchable Transistors Employing Carbon Nanotube Semiconductor and Electrodes (159 citations)
  • Anion control as a strategy to achieve high-mobility and high-stability oxide thin-film transistors. (103 citations)

In his most recent research, the most cited papers focused on:

  • Organic chemistry
  • Semiconductor
  • Optics

His primary scientific interests are in Optoelectronics, Semiconductor, Transistor, Quantum efficiency and Photodiode. His Optoelectronics study combines topics from a wide range of disciplines, such as Transistor array and Thin-film transistor. His study in Semiconductor is interdisciplinary in nature, drawing from both Copolymer, Polymer, Layer and Electrode.

In his research, Shallow donor, Inorganic chemistry and Threshold voltage is intimately related to Hydrogen, which falls under the overarching field of Transistor. His Quantum efficiency research includes elements of OLED, Acceptor, Fluorescence and Polymer solar cell. Within one scientific family, he focuses on topics pertaining to Host material under Fluorescence, and may sometimes address concerns connected to Nanotechnology.

Best Publications

  • Large-scale pattern growth of graphene films for stretchable transparent electrodes

    Keun Soo Kim;Yue Zhao;Houk Jang;Sang Yoon Lee

  • High-mobility and low-power thin-film transistors based on multilayer MoS2 crystals

    Sunkook Kim;Sunkook Kim;Aniruddha Konar;Wan-Sik Hwang;Jong Hak Lee

  • Full-colour quantum dot displays fabricated by transfer printing

    Tae Ho Kim;Kyung Sang Cho;Eun Kyung Lee;Sang Jin Lee

  • Tuning charge transport in solution-sheared organic semiconductors using lattice strain

    Gaurav Giri;Eric Verploegen;Eric Verploegen;Stefan C. B. Mannsfeld;Sule Atahan-Evrenk

  • 42.2: World's Largest (15‐inch) XGA AMLCD Panel Using IGZO Oxide TFT

    Je Hun Lee;Do Hyun Kim;Dong Ju Yang;Sun Young Hong

  • Printable organometallic perovskite enables large-area, low-dose X-ray imaging

    Yong Churl Kim;Kwang Hee Kim;Dae-Yong Son;Dong-Nyuk Jeong

  • 42.4L: Late‐News Paper: 4 inch QVGA AMOLED Driven by the Threshold Voltage Controlled Amorphous GIZO (Ga2O3‐In2O3‐ZnO) TFT

    Kyoung Seok Son;Tae Sang Kim;Ji Sim Jung;Myung Kwan Ryu

  • High-Mobility Field-Effect Transistors from Large-Area Solution-Grown Aligned C60 Single Crystals

    Hanying Li;Benjamin C-K. Tee;Judy J. Cha;Yi Cui

  • Mechanically Powered Transparent Flexible Charge‐Generating Nanodevices with Piezoelectric ZnO Nanorods

    Min-Yeol Choi;Dukhyun Choi;Mi-Jin Jin;Insoo Kim

  • Low-Power Flexible Organic Light-Emitting Diode Display Device

    Sunkook Kim;Hyuk-Jun Kwon;Sunghun Lee;Hongshik Shim

  • Flexible, Angle‐Independent, Structural Color Reflectors Inspired by Morpho Butterfly Wings

    Kyungjae Chung;Sunkyu Yu;Chul-Joon Heo;Jae Won Shim

  • Fully Rollable Transparent Nanogenerators Based on Graphene Electrodes

    Dukhyun Choi;Min-Yeol Choi;Won Mook Choi;Hyeon-Jin Shin

  • Bottom-Gate Gallium Indium Zinc Oxide Thin-Film Transistor Array for High-Resolution AMOLED Display

    Jang Yeon Kwon;Kyoung Seok Son;Ji Sim Jung;Tae Sang Kim

  • Control of Electronic Structure of Graphene by Various Dopants and Their Effects on a Nanogenerator

    Hyeon-Jin Shin;Won Mook Choi;Dukhyun Choi;Gang Hee Han

  • Mechanically Durable and Highly Stretchable Transistors Employing Carbon Nanotube Semiconductor and Electrodes

    Alex Chortos;Ghada I. Koleilat;Raphael Pfattner;Desheng Kong

  • Comparative Study on Light-Induced Bias Stress Instability of IGZO Transistors With $\hbox{SiN}_{x}$ and $ \hbox{SiO}_{2}$ Gate Dielectrics

    Kwang Hwan Ji;Ji-In Kim;Yeon-Gon Mo;Jong Han Jeong

  • Anion control as a strategy to achieve high-mobility and high-stability oxide thin-film transistors.

    Hyun-Suk Kim;Sang Ho Jeon;Joon Seok Park;Tae Sang Kim

  • Effect of surface morphology on friction of graphene on various substrates

    Dae Hyun Cho;Lei Wang;Jin Seon Kim;Gwan Hyoung Lee;Gwan Hyoung Lee

  • Full color tunable photonic crystal from crystalline colloidal arrays with an engineered photonic stop-band.

    Moon Gyu Han;Chang Gyun Shin;Seog-Jin Jeon;HongShik Shim

  • Space-coiling metamaterials with double negativity and conical dispersion.

    Zixian Liang;Tianhua Feng;Shu Kin Lok;Fu Liu

  • Verfahren zur Herstellung eines Dünnschichttransistors aus einem Oxidhalbleiter

    Lee Sang-Yoon;Park Kyung-Bae;Kwon Jang-Yeon;Jung Ji-Sim

Frequent Co-Authors

Jang-Yeon Kwon
Jang-Yeon Kwon Yonsei University
Jong Min Kim
Jong Min Kim University of Cambridge
Do Hwan Kim
Do Hwan Kim Hanyang University
Jae-Young Choi
Jae-Young Choi Sungkyunkwan University
Zhenan Bao
Zhenan Bao Stanford University
Dukhyun Choi
Dukhyun Choi Kyung Hee University
Sang-Woo Kim
Sang-Woo Kim Yonsei University
Jae Kyeong Jeong
Jae Kyeong Jeong Hanyang University
Hyun Jae Kim
Hyun Jae Kim Yonsei University
Seongil Im
Seongil Im Yonsei University

If you think any of the details on this page are incorrect, let us know.

Report an issue

We appreciate your kind effort to assist us to improve this page, it would be helpful providing us with as much detail as possible in the text box below:

Related Online Degrees & Career Pathways

For students pursuing Electronics and Electrical Engineering in the USA, exploring flexible learning options can be key. Many institutions now offer competency-based online colleges, allowing learners to progress at their own pace by demonstrating mastery of skills rather than following traditional semesters. This approach can be especially beneficial for those balancing work or family commitments.

Military spouses and dependents often face unique challenges in continuing education, so finding tailored options is important. There are several online universities for military spouses that understand these needs, offering flexible schedules and support services designed to help this community thrive.

For those looking to start quickly or fit studies into a busy life, online colleges with frequent start dates provide the convenience of enrolling nearly any week of the year. This flexibility can accelerate career advancement in technical fields like electronics and electrical engineering.

Additionally, short-term training programs can lead to lucrative roles in the industry. Many students benefit from exploring short certificate programs that pay well online, which offer targeted skills and certifications that employers value, helping graduates enter the workforce faster.

Best Scientists Citing sang yoon lee

Trending Scientists

Recently Published Articles