World's Best Scientists 2026 revealed!

D-Index & Metrics

Electronics and Electrical Engineering

D-Index
54
Citations
10651
World Ranking
2301
National Ranking
76

Yuerui Lu 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 Yuerui Lu 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: 161 publications — 18th percentile

18% of scientists in this discipline score the same or lower.

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

Yuerui Lu 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 Yuerui Lu 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: 54 D-Index — 68th percentile

68% of scientists in this discipline score the same or lower.

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

Overview

Yuerui Lu is a researcher based at the Australian National University in Australia, with a primary focus on materials science and engineering. Their scholarly output spans multiple interconnected fields including materials chemistry, electrical and electronic engineering, atomic and molecular physics and optics, biomedical engineering, and electronic, optical, and magnetic materials.

Their research encompasses key topics such as 2D materials and applications, perovskite materials, MXene and MAX phase materials, graphene research, advanced sensor and energy harvesting materials, metamaterials and metasurfaces applications, as well as advanced fiber laser technologies.

Yuerui Lu has contributed to numerous articles published in several leading scientific venues, with notable frequent publications in:

  • arXiv (Cornell University)
  • ACS Nano
  • Advanced Functional Materials
  • Nature Communications
  • Advanced Materials

Some of their recent research papers include:

  • Power generation for wearable systems, 2021, Energy & Environmental Science
  • Evidence of the direct-to-indirect band gap transition in strained two-dimensional WS₂, MoS₂, and WSe₂, 2020, Physical Review Research
  • Recent Developments in van der Waals Antiferromagnetic 2D Materials: Synthesis, Characterization, and Device Implementation, 2021, ACS Nano
  • Mechanisms and Applications of Steady-State Photoluminescence Spectroscopy in Two-Dimensional Transition-Metal Dichalcogenides, 2020, ACS Nano
  • Optical Harmonic Generation in 2D Materials, 2021, Advanced Functional Materials

Collaboration is a significant aspect of Yuerui Lu's research activities. Frequent co-authors include:

  • Xueqian Sun
  • Tanju Yildirim
  • Sharidya Rahman
  • Boqing Liu
  • Linglong Zhang

Their scientific contributions reflect cross-disciplinary expertise at the interface of materials science, chemistry, and engineering which supports advancements in emerging two-dimensional materials and their applications in energy, optics, and device technologies.

Best Publications

  • Extraordinary Photoluminescence and Strong Temperature/Angle-Dependent Raman Responses in Few-Layer Phosphorene

    Shuang Zhang;Jiong Yang;Renjing Xu;Fan Wang

  • Selective etching of metallic carbon nanotubes by gas-phase reaction.

    Guangyu Zhang;Pengfei Qi;Xinran Wang;Yuerui Lu

  • Producing air-stable monolayers of phosphorene and their defect engineering

    Jiajie Pei;Xin Gai;Jiong Yang;Xinbin Wang

  • Two-Dimensional CH3NH3PbI3 Perovskite: Synthesis and Optoelectronic Application

    Jingying Liu;Yunzhou Xue;Ziyu Wang;Zai-Quan Xu

  • Optical tuning of exciton and trion emissions in monolayer phosphorene

    Jiong Yang;Renjing Xu;Jiajie Pei;Jiajie Pei;Ye Win Myint

  • Ultrathin Metal–Organic Framework: An Emerging Broadband Nonlinear Optical Material for Ultrafast Photonics

    Xiantao Jiang;Liangjing Zhang;Shunxiang Liu;Yiyue Zhang

  • Power generation for wearable systems

    Mingyuan Gao;Mingyuan Gao;Ping Wang;Ping Wang;Lili Jiang;Bowen Wang

  • Many-Body Complexes in 2D Semiconductors.

    Jiajie Pei;Jiong Yang;Tanju Yildirim;Han Zhang

  • High-Efficiency Ordered Silicon Nano-Conical-Frustum Array Solar Cells by Self-Powered Parallel Electron Lithography

    Yuerui Lu;Amit Lal

  • DNA Functionalization of Carbon Nanotubes for Ultrathin Atomic Layer Deposition of High κ Dielectrics for Nanotube Transistors with 60 mV/Decade Switching

    Yuerui Lu;Sarunya Bangsaruntip;Xinran Wang;Li Zhang

  • ELECTRICAL TRANSPORT PROPERTIES AND FIELD EFFECT TRANSISTORS OF CARBON NANOTUBES

    Hongjie Dai;Ali Javey;Eric Pop;David Mann

  • Highly Efficient and Air-Stable Infrared Photodetector Based on 2D Layered Graphene–Black Phosphorus Heterostructure

    Yan Liu;Bannur Nanjunda Shivananju;Bannur Nanjunda Shivananju;Yusheng Wang;Yupeng Zhang

  • Enhanced second-harmonic generation from two-dimensional MoSe2 on a silicon waveguide.

    Haitao Chen;Vincent Corboliou;Vincent Corboliou;Alexander S Solntsev;Duk-Yong Choi

  • Hydrogenation and Hydrocarbonation and Etching of Single-Walled Carbon Nanotubes

    Guangyu Zhang;Pengfei Qi;Xinran Wang;Yuerui Lu

  • Robust Excitons and Trions in Monolayer MoTe2.

    Jiong Yang;Tieyu Lü;Ye Win Myint;Jiajie Pei;Jiajie Pei

  • Optical properties of ultrashort semiconducting single-walled carbon nanotube capsules down to sub-10 nm.

    Xiaoming Sun;Sasa Zaric;Dan Daranciang;Kevin Welsher

  • Evidence of the direct-to-indirect band gap transition in strained two-dimensional WS 2 , MoS 2 , and WSe 2

    E. Blundo;M. Felici;T. Yildirim;G. Pettinari

  • Space-compatible cavity-enhanced single-photon generation with hexagonal boron nitride

    Tobias Vogl;Ruvi Lecamwasam;Ben C. Buchler;Yuerui Lu

  • Radiation tolerance of two-dimensional material-based devices for space applications

    Tobias Vogl;Kabilan Sripathy;Ankur Sharma;Prithvi Reddy

  • Atomically thin optical lenses and gratings

    Jiong Yang;Zhu Wang;Fan Wang;Renjing Xu

  • Giant Plasmene Nanosheets, Nanoribbons, and Origami

    Kae Jye Si;Debabrata Sikdar;Yi Chen;Yi Chen;Fatima Eftekhari

  • DNA Functionalization of Carbon Nanotubes for Ultra-Thin Atomic Layer Deposition of High k Dielectrics for Nanotube Transistors with 60mV/decade Switching

    Yuerui Lu;Sarunya Bangsaruntip;Xinran Wang;Li Zhang

Frequent Co-Authors

Hongjie Dai
Hongjie Dai University of Hong Kong
Lan Fu
Lan Fu Australian National University
Qiaoliang Bao
Qiaoliang Bao University of Shanghai for Science and Technology
Ping Koy Lam
Ping Koy Lam A*STAR - Agency for Science, Technology and Research
Zongfu Yu
Zongfu Yu University of Wisconsin–Madison
Qing-Hua Qin
Qing-Hua Qin Xi'an Jiaotong University
Xinran Wang
Xinran Wang Nanjing University
Dragomir N. Neshev
Dragomir N. Neshev Australian National University
Daniel Macdonald
Daniel Macdonald Australian National University
Yupeng Zhang
Yupeng Zhang Shenzhen University

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Related Online Degrees & Career Pathways

For students pursuing Electronics and Electrical Engineering, expanding skills through related online degrees can open diverse career opportunities. One popular option is a bachelor degree in project management, which equips graduates with leadership and organizational abilities crucial for managing engineering projects efficiently.

Many working professionals seek flexibility, making bachelor degree programs for working adults an ideal choice. These programs offer accelerated paths that balance education with career and personal commitments, enhancing technical and managerial skills without sacrificing time.

For those interested in workforce training roles within engineering firms, pursuing a master's in training and development online can prepare graduates to design effective educational programs and training initiatives, helping organizations adapt to new technologies and compliance standards.

Additionally, competency based programs offer a modern approach to learning, focusing on mastery of specific skills rather than time spent in class. This method benefits engineers by ensuring practical expertise directly aligned with industry needs and faster degree completion.

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