Published October 25, 2025 | Version v2

Wireless Energy Transfer Beamforming Optimization for Intelligent Transmitting Surface

  • 1. ROR icon University of Oulu
  • 2. ROR icon Center for Wireless Communications
  • 1. ROR icon University of Oulu
  • 2. ROR icon Universidade Federal de Santa Catarina
  • 3. ROR icon Friedrich-Alexander-Universität Erlangen-Nürnberg
  • 4. ROR icon National Institute of Telecommunications

Description

Radio frequency (RF) wireless energy transfer (WET) is a promising technology for powering the growing ecosystem of Internet of Things (IoT) devices using power beacons (PBs). Recent research focuses on designing efficient PB architectures that can support numerous antennas. In this context, PBs equipped with intelligent surfaces present a promising approach, enabling physically large, reconfigurable arrays. Motivated by these advantages, this work aims to minimize the power consumption of a PB equipped with a passive intelligent transmitting surface (ITS) and a collocated digital beamforming-based feeder to charge multiple single-antenna devices. To model the PB's power consumption accurately, we consider power amplifiers nonlinearities, ITS control power, and feeder-to-ITS air interface losses. The resulting optimization problem is highly nonlinear and nonconvex due to the high-power amplifier (HPA), the received power constraints at the devices, and the unit-modulus constraint imposed by the phase shifter configuration of the ITS. To tackle this issue, we apply successive convex approximation (SCA) to iteratively solve convex subproblems that jointly optimize the digital precoder and phase configuration. Given SCA's sensitivity to initialization, we propose an algorithm that ensures initialization feasibility while balancing convergence speed and solution quality. We compare the proposed ITS-equipped PB's power consumption against benchmark architectures featuring digital and hybrid analog-digital beamforming. Results demonstrate that the proposed architecture efficiently scales with the number of RF chains and ITS elements. We also show that nonuniform ITS power distribution influences beamforming and can shift a device between near- and far-field regions, even with a constant aperture.

Files

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Additional details

Funding

Research Council of Finland
Ultra-cyberPhysical system for tRuly wIrelesS chargING (UPRISING) 348515
Research Council of Finland
6G Flagship - 6G-Enabled Wireless Smart Society & Ecosystem 369116
European Commission
Hexa-X-II - A holistic flagship towards the 6G network platform and system, to inspire digital transformation, for the world to act together in meeting needs in society and ecosystems with novel 6G services 101095759
European Commission
AMBIENT-6G - Towards standardized 6G connectivity for ambiently-powered energy neutral IoT devices 101192113
National Council for Scientific and Technological Development
Bolsa de Produtividade em Pesquisa – Nível 1B 305021/2021-4
National Education and Research Network
Projeto Brasil 6G – RNP/MCTI 01245.020548/2021-07
Agencia Nacional de Investigación y Desarrollo
FONDECYT 1241977
Fundação de Amparo à Pesquisa do Estado de Minas Gerais
Projeto de Soluções Emergentes para Sistemas de Comunicação B5G APQ-04523-23
Fundação de Amparo à Pesquisa do Estado de Minas Gerais
PPE-00124-23
National Institute of Telecommunications
Projeto de Pesquisa em 5G e 6G – XGM-AFCCT-2024-4-1-1 XGM-AFCCT-2024-4-1-1

Software

Repository URL
https://github.com/Osmel-dev/ITS-equipped-PB
Programming language
MATLAB