A Survey on Green Designs for Energy Harvesting Backscatter Communications to Enable Sustainable IoT

被引:0
作者
Zeng, Jiawang [1 ]
Zhang, Tianyi [1 ]
Mishra, Deepak [1 ]
Yuan, Jinhong [1 ]
Seneviratne, Aruna [1 ]
机构
[1] Univ New South Wales UNSW, Sch Elect Engn & Telecommun, Sydney, NSW 2052, Australia
基金
澳大利亚研究理事会;
关键词
backscatter communication; energy harvesting; energy efficiency; sustainable internet of things; green resource allocation; WIRELESS POWER TRANSFER; RESOURCE-ALLOCATION; EFFICIENCY MAXIMIZATION; CHANNEL ESTIMATION; RF; NETWORKS; INTERNET; SYSTEMS; ANTENNA; OPTIMIZATION;
D O I
10.3390/en18040840
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The majority of Internet of Things (IoT) devices operate with limited energy resources, making it essential to prioritize sustainable carbon emissions and the adoption of energy-efficient IoT solutions. For this reason, backscatter communication (BackCom) devices are widely deployed because they are mostly passive devices that harvest energy from RF signals and modulate the information onto reflected signals by adjusting the impedance of the load. BackCom devices have a simple structure, low cost, and easy deployment. Although BackCom plays a positive role in improving energy efficiency, IoT systems that deploy many EH BackCom devices and connect numerous peripherals still face difficulties in terms of power limitations because the energy required for their operation is almost all harvested from the outside. This paper comprehensively reviews the approaches to solving the energy efficiency issues in energy harvesting (EH) BackCom-enabled IoT systems, which mainly include high-efficiency EH and energy conversion designs for the BackCom tag, renewable energy harvesting, waveform design, and resource allocation for readers. We also investigate various green designs for cooperative EH BackCom systems. Finally, we indicate the new applications and open challenges of green BackCom IoT systems, as well as future research directions.
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页数:46
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  • [1] Zikria Y.B., Ali R., Afzal M.K., Kim S.W., Next-Generation Internet of Things (IoT): Opportunities, Challenges, and Solutions, Sensors, 21, (2021)
  • [2] Ramirez Lopez L.J., Grijalba Castro A.I., Sustainability and Resilience in Smart City Planning: A Review, Sustainability, 13, (2021)
  • [3] Quy V.K., Hau N.V., Anh D.V., Quy N.M., Ban N.T., Lanza S., Randazzo G., Muzirafuti A., IoT-Enabled Smart Agriculture: Architecture, Applications, and Challenges, Appl. Sci, 12, (2022)
  • [4] Al-rawashdeh M., Keikhosrokiani P., Belaton B., Alawida M., Zwiri A., IoT Adoption and Application for Smart Healthcare: A Systematic Review, Sensors, 22, (2022)
  • [5] Zeeshan K., Hamalainen T., Neittaanmaki P., Internet of Things for Sustainable Smart Education: An Overview, Sustainability, 14, (2022)
  • [6] Ullo S.L., Sinha G.R., Advances in Smart Environment Monitoring Systems Using IoT and Sensors, Sensors, 20, (2020)
  • [7] Farhan L., Shukur S.T., Alissa A.E., Alrweg M., Raza U., Kharel R., A survey on the challenges and opportunities of the Internet of Things (IoT), Proceedings of the 2017 Eleventh International Conference on Sensing Technology (ICST), pp. 1-5
  • [8] Bello O., Zeadally S., Intelligent Device-to-Device Communication in the Internet of Things, IEEE Syst. J, 10, pp. 1172-1182, (2016)
  • [9] Shafique K., Khawaja B.A., Sabir F., Qazi S., Mustaqim M., Internet of Things (IoT) for Next-Generation Smart Systems: A Review of Current Challenges, Future Trends and Prospects for Emerging 5G-IoT Scenarios, IEEE Access, 8, pp. 23022-23040, (2020)
  • [10] Friedli M., Kaufmann L., Paganini F., Kyburz R., Energy Efficiency of the Internet of Things, (2016)