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Materials Science

D-Index
40
Citations
16857
World Ranking
12769
National Ranking
2929

Overview

Anish Tuteja is affiliated with the University of Michigan-Ann Arbor in the United States. Their research primarily focuses on engineering and materials science, with an emphasis on surfaces, coatings, and films. They have contributed to multiple subfields, including biomedical engineering, mechanics of materials, aerospace engineering, and ocean engineering.

The main research topics addressed by Anish Tuteja include surface modification and superhydrophobicity, adhesion and friction, marine biology and environmental chemistry, polymer surface interaction studies, fluid dynamics and heat transfer, icing and de-icing technologies, as well as innovations in microfluidic and catalytic techniques.

They have published extensively in several prominent scientific journals. Frequent venues for their work include:

  • ACS Applied Materials & Interfaces
  • Langmuir
  • Matter
  • Science
  • Lab on a Chip

Recent publications by Anish Tuteja consist of:

  • Design and applications of surfaces that control the accretion of matter, 2021, Science
  • Surface design strategies for mitigating ice and snow accretion, 2022, Matter
  • Lysis and direct detection of coliforms on printed paper-based microfluidic devices, 2020, Lab on a Chip
  • Rapid and Robust Surface Treatment for Simultaneous Solid and Liquid Repellency, 2021, ACS Applied Materials & Interfaces
  • Rational Design of Transparent Nanowire Architectures with Tunable Geometries for Preventing Marine Fouling, 2020, Advanced Materials Interfaces

Collaboration is a significant aspect of their work, with frequent coauthors including:

  • Abhishek Dhyani
  • Jing Wang
  • Geeta Mehta
  • Taylor Repetto
  • Brian Macdonald

Best Publications

  • Designing Superoleophobic Surfaces

    Anish Tuteja;Wonjae Choi;Minglin Ma;Joseph M. Mabry

  • Robust omniphobic surfaces

    Anish Tuteja;Wonjae Choi;Joseph M. Mabry;Gareth H. McKinley

  • Hygro-responsive membranes for effective oil–water separation

    Arun K. Kota;Gibum Kwon;Wonjae Choi;Joseph M. Mabry

  • General strategies for nanoparticle dispersion.

    Michael E. Mackay;Anish Tuteja;Phillip M. Duxbury;Craig J. Hawker

  • Nanoscale effects leading to non-Einstein-like decrease in viscosity

    Michael E. Mackay;Tien T. Dao;Anish Tuteja;Derek L. Ho

  • A modified Cassie-Baxter relationship to explain contact angle hysteresis and anisotropy on non-wetting textured surfaces.

    Wonjae Choi;Anish Tuteja;Joseph M. Mabry;Robert E. Cohen

  • Designing durable icephobic surfaces

    Kevin Golovin;Sai P. R. Kobaku;Duck Hyun Lee;Edward T. DiLoreto

  • On-Demand Separation of Oil-Water Mixtures

    Gibum Kwon;Arun. K. Kota;Yongxin Li;Ameya Sohani

  • Superomniphobic Surfaces for Effective Chemical Shielding

    Shuaijun Pan;Arun K. Kota;Joseph M. Mabry;Anish Tuteja

  • Low-interfacial toughness materials for effective large-scale deicing.

    Kevin Golovin;Abhishek Dhyani;M. D. Thouless;Anish Tuteja

  • Fabrics with Tunable Oleophobicity

    Wonjae Choi;Anish Tuteja;Shreerang Chhatre;Joseph M. Mabry

  • The design and applications of superomniphobic surfaces

    Arun K Kota;Gibum Kwon;Anish Tuteja

  • Design Parameters for Superhydrophobicity and Superoleophobicity

    Anish Tuteja;Wonjae Choi;Gareth H. McKinley;Robert E. Cohen

  • Hierarchically Structured Superoleophobic Surfaces with Ultralow Contact Angle Hysteresis

    Arun K. Kota;Yongxin Li;Joseph M. Mabry;Anish Tuteja

  • Breakdown of the Continuum Stokes−Einstein Relation for Nanoparticle Diffusion

    Anish Tuteja;Michael E. Mackay;Suresh Narayanan;Subashini Asokan

  • Effect of Ideal, Organic Nanoparticles on the Flow Properties of Linear Polymers: Non-Einstein-like Behavior

    Anish Tuteja;Michael E. Mackay;Craig J. Hawker;Brooke Van Horn

  • Multifunctional nanocomposites with reduced viscosity

    Anish Tuteja;Phillip M. Duxbury;Michael E. Mackay

  • Designing Self-Healing Superhydrophobic Surfaces with Exceptional Mechanical Durability

    Kevin Golovin;Mathew Boban;Joseph M. Mabry;Anish Tuteja

  • Design and applications of surfaces that control the accretion of matter

    Abhishek Dhyani;Jing Wang;Alex Kate Halvey;Brian Macdonald

  • Superomniphobic surfaces: Design and durability

    Arun K. Kota;Wonjae Choi;Anish Tuteja

  • Scale dependence of omniphobic mesh surfaces

    Shreerang S Chhatre;Wonjae Choi;Anish Tuteja;Kyoo-Chul Kenneth Park

Frequent Co-Authors

Joseph M. Mabry
Joseph M. Mabry United States Air Force Research Laboratory
Steven L. Ceccio
Steven L. Ceccio University of Michigan–Ann Arbor
Marc Perlin
Marc Perlin Texas A&M University
Michael E. Mackay
Michael E. Mackay University of Delaware
Craig J. Hawker
Craig J. Hawker University of California, Santa Barbara
Neil P. Dasgupta
Neil P. Dasgupta University of Michigan–Ann Arbor
Michael P. Schultz
Michael P. Schultz United States Naval Academy
M. D. Thouless
M. D. Thouless University of Michigan–Ann Arbor

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