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Engineering and Technology

D-Index
48
Citations
9857
World Ranking
4524
National Ranking
1297

Overview

Andrew N. Jansen is affiliated with Argonne National Laboratory in the United States. Their research primarily spans the field of engineering, with significant contributions to electrical and electronic engineering, automotive engineering, and mechanical engineering. Additional work involves surfaces, coatings and films, as well as radiation.

Their publications frequently focus on advancements in battery materials and technologies. Specific topics include:

  • Advancements in Battery Materials
  • Advanced Battery Technologies Research
  • Advanced Battery Materials and Technologies
  • Extraction and Separation Processes
  • Electron and X-Ray Spectroscopy Techniques
  • Nuclear Physics and Applications
  • Semiconductor materials and devices

Key recent papers authored by Andrew N. Jansen include:

  • Electrode scale and electrolyte transport effects on extreme fast charging of lithium-ion cells, 2020, Electrochimica Acta
  • Quantification of heterogeneous, irreversible lithium plating in extreme fast charging of lithium-ion batteries, 2021, Energy & Environmental Science
  • Heterogeneous Behavior of Lithium Plating during Extreme Fast Charging, 2020, Cell Reports Physical Science
  • Extended cycle life implications of fast charging for lithium-ion battery cathode, 2021, Energy Storage Materials
  • 3D Detection of Lithiation and Lithium Plating in Graphite Anodes during Fast Charging, 2021, ACS Nano

Jansen has collaborated frequently with several researchers, including Stephen E. Trask, Alison R. Dunlop, Eric J. Dufek, Tanvir R. Tanim, and Andrew M. Colclasure.

The scientist's work has been published predominantly in venues such as ECS Meeting Abstracts, Journal of Power Sources, Journal of The Electrochemical Society, arXiv (Cornell University), and SSRN Electronic Journal.

Best Publications

  • Optimizing areal capacities through understanding the limitations of lithium-ion electrodes

    Kevin G. Gallagher;Stephen E. Trask;Christoph Bauer;Thomas Woehrle

  • Differential voltage analyses of high-power, lithium-ion cells: 1. Technique and application

    Ira Bloom;Andrew N. Jansen;Daniel P. Abraham;Jamie Knuth

  • Studies of Mg-substituted Li4-xMgxTi5O12 spinel electrodes (0 ≤ x ≤ 1) for lithium batteries

    C. H. Chen;J. T. Vaughey;A. N. Jansen;D. W. Dees

  • Enabling fast charging – A battery technology gap assessment

    Shabbir Ahmed;Ira Bloom;Andrew N. Jansen;Tanvir Tanim

  • Mn(II) deposition on anodes and its effects on capacity fade in spinel lithium manganate–carbon systems

    Chun Zhan;Jun Lu;A Jeremy Kropf;Tianpin Wu

  • An All‐Organic Non‐aqueous Lithium‐Ion Redox Flow Battery

    Fikile R. Brushett;John T. Vaughey;Andrew N. Jansen

  • Development of a high-power lithium-ion battery

    A.N Jansen;A.J Kahaian;K.D Kepler;P.A Nelson

  • Enabling fast charging – Battery thermal considerations

    Matthew Keyser;Ahmad Pesaran;Qibo Li;Shriram Santhanagopalan

  • Requirements for Enabling Extreme Fast Charging of High Energy Density Li-Ion Cells while Avoiding Lithium Plating

    Andrew M. Colclasure;Alison R. Dunlop;Stephen E. Trask;Bryant J. Polzin

  • Factors responsible for impedance rise in high power lithium ion batteries

    K. Amine;C.H. Chen;J. Liu;M. Hammond

  • Application of a lithium-tin reference electrode to determine electrode contributions to impedance rise in high-power lithium-ion cells

    Daniel P. Abraham;Steven D. Poppen;Andrew N. Jansen;Jun Liu

  • Enabling fast charging - Infrastructure and economic considerations

    Andrew Burnham;Eric J. Dufek;Thomas Stephens;James Francfort

  • Enabling fast charging – Vehicle considerations

    Andrew Meintz;Jiucai Zhang;Ram Vijayagopal;Cory Kreutzer

  • Cycling Behavior of NCM523/Graphite Lithium-Ion Cells in the 3–4.4 V Range: Diagnostic Studies of Full Cells and Harvested Electrodes

    James A. Gilbert;Javier Bareño;Timothy Spila;Stephen E. Trask

  • Electrode scale and electrolyte transport effects on extreme fast charging of lithium-ion cells

    Andrew M. Colclasure;Tanvir R. Tanim;Andrew N. Jansen;Stephen E. Trask

  • Effect of electrolyte composition on initial cycling and impedance characteristics of lithium-ion cells

    D.P. Abraham;M.M. Furczon;S.-H. Kang;D.W. Dees

  • Alternating Current Impedance Electrochemical Modeling of Lithium-Ion Positive Electrodes

    Dennis Dees;Evren Gunen;Daniel Abraham;Andrew Jansen

  • New class of nonaqueous electrolytes for long-life and safe lithium-ion batteries

    Zonghai Chen;Yang Ren;Andrew N. Jansen;Chi-kai Lin

  • Electrode Behavior RE-Visited: Monitoring Potential Windows, Capacity Loss, and Impedance Changes in Li1.03(Ni0.5Co0.2Mn0.3)0.97O2/Silicon-Graphite Full Cells

    Matilda Klett;James A. Gilbert;Stephen E. Trask;Bryant J. Polzin

  • Aging characteristics of high-power lithium-ion cells with LiNi0.8Co0.15Al0.05O2 and Li4/3Ti5/3O4 electrodes

    D.P. Abraham;E.M. Reynolds;E. Sammann;A.N. Jansen

Frequent Co-Authors

Dennis W. Dees
Dennis W. Dees Argonne National Laboratory
Daniel P. Abraham
Daniel P. Abraham Argonne National Laboratory
Wenquan Lu
Wenquan Lu Argonne National Laboratory
Ira Bloom
Ira Bloom Argonne National Laboratory
John T. Vaughey
John T. Vaughey Argonne National Laboratory
Khalil Amine
Khalil Amine Argonne National Laboratory
Kevin G. Gallagher
Kevin G. Gallagher Argonne National Laboratory
Shabbir Ahmed
Shabbir Ahmed Argonne National Laboratory
Andrew M. Colclasure
Andrew M. Colclasure National Renewable Energy Laboratory
Michael F. Toney
Michael F. Toney University of Colorado Boulder

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