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Bartlomiej Salski

Researcher at Warsaw University of Technology

Publications -  132
Citations -  914

Bartlomiej Salski is an academic researcher from Warsaw University of Technology. The author has contributed to research in topics: Finite-difference time-domain method & Permittivity. The author has an hindex of 15, co-authored 116 publications receiving 663 citations.

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A Broadband Absorber With a Resistive Pattern Made of Ink With Graphene Nano-Platelets

TL;DR: In this paper, a resistive pattern printed on a dielectric spacer backed by a conducting surface is used to extend an absorption spectrum up to an octave and beyond, which is very competitive over alternative solutions.
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Graphene-Based Dipole Antenna for a UHF RFID Tag

TL;DR: In this article, the design and measurements of a remote frequency identification (RFID) tag built of a graphene-based dipole antenna and a chip operating in the ultra-high frequency (UHF) band in accordance with the EPC Global Class 1 Gen 2 standard is described.
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Non-destructive testing of carbon-fibre-reinforced polymer materials with a radio-frequency inductive sensor

TL;DR: In this article, a comprehensive experimental study of the non-destructive RF inductive testing technique, based on coupled spiral inductors, is presented, which can be applicable to the structural health monitoring of CFRP composite materials.
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Electric Properties of Graphene-Based Conductive Layers from DC Up To Terahertz Range

TL;DR: In this article, a hybrid measurement methodology was employed to investigate electric properties of thin conductive layers based on graphene nanoplatelets in the frequency band spanning from dc up to terahertz range.
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An Advanced SAR Simulator of Three-Dimensional Structures Combining Geometrical Optics and Full-Wave Electromagnetic Methods

TL;DR: The SAR raw radar simulator described in this paper allows a complex and realistic simulation of any scene under radar observation to be performed and presents a new concept of hybrid analysis, based on GO enhanced with full-wave EM simulations of larger facets-of the size of a few radar resolution cells.