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Topological survey of zeta power converters from classical designs to emerging architectures

Rahman, Showrov ; Banik, Anindya ; Hossain, Md. Kawsar ; Islam, Mainul ; Al-Hysam, Abdullah LU orcid and Ahmed, Istiak (2026) In Energy Conversion and Management: X 31.
Abstract
Initially introduced as the dual single-ended primary inductor converter (SEPIC), the zeta converter has since evolved significantly from the classical direct current (DC) converter. Its ability to provide both buck and boost operation while maintaining non-inverting output voltage, continuous output current with low ripple has made it increasingly popular in a wide range of applications. The converter can also operate over a wide input voltage range, making it well suited for renewable energy systems and battery-powered applications. Today, the zeta converter is widely used in photovoltaic (PV) energy systems, electric vehicles (EVs), light-emitting diode (LED) drivers, portable electronics, and modern microgrids (MGs). Its topological... (More)
Initially introduced as the dual single-ended primary inductor converter (SEPIC), the zeta converter has since evolved significantly from the classical direct current (DC) converter. Its ability to provide both buck and boost operation while maintaining non-inverting output voltage, continuous output current with low ripple has made it increasingly popular in a wide range of applications. The converter can also operate over a wide input voltage range, making it well suited for renewable energy systems and battery-powered applications. Today, the zeta converter is widely used in photovoltaic (PV) energy systems, electric vehicles (EVs), light-emitting diode (LED) drivers, portable electronics, and modern microgrids (MGs). Its topological evolution has extended beyond the conventional non-isolated DC–DC converter to include isolated DC–DC converters, zeta-derived alternating current (AC) to DC converters, as well as DC–AC and AC–AC converter topologies that are derived from or inspired by the zeta topology. This paper reviews the topological evolution of the zeta converter across different AC and DC power conversion systems and their applications. It also presents a systematic classification of zeta and zeta-derived converters, a comparative analysis of prominent zeta converter topologies based on component count, intended applications, power rating, and key performance metrics. For DC applications, the performance metrics includes conversion efficiency, while for AC applications, it considers efficiency, power factor, and total harmonic distortion (THD). The study also proposes a topological performance index (TPI) to systematically evaluate the performance of the zeta converter topology against other widely used DC–DC converter topologies. Finally, this paper discusses the future opportunities and challenges associated with the continued development and application of the zeta converter. (Less)
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author
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organization
publishing date
type
Contribution to journal
publication status
published
subject
in
Energy Conversion and Management: X
volume
31
article number
102222
pages
20 pages
publisher
Elsevier
ISSN
2590-1745
DOI
10.1016/j.ecmx.2026.102222
language
English
LU publication?
yes
id
7687d4f1-11ea-4359-b3f4-05ccc2262bb0
date added to LUP
2026-08-21 10:53:37
date last changed
2026-08-25 11:34:31
@article{7687d4f1-11ea-4359-b3f4-05ccc2262bb0,
  abstract     = {{Initially introduced as the dual single-ended primary inductor converter (SEPIC), the zeta converter has since evolved significantly from the classical direct current (DC) converter. Its ability to provide both buck and boost operation while maintaining non-inverting output voltage, continuous output current with low ripple has made it increasingly popular in a wide range of applications. The converter can also operate over a wide input voltage range, making it well suited for renewable energy systems and battery-powered applications. Today, the zeta converter is widely used in photovoltaic (PV) energy systems, electric vehicles (EVs), light-emitting diode (LED) drivers, portable electronics, and modern microgrids (MGs). Its topological evolution has extended beyond the conventional non-isolated DC–DC converter to include isolated DC–DC converters, zeta-derived alternating current (AC) to DC converters, as well as DC–AC and AC–AC converter topologies that are derived from or inspired by the zeta topology. This paper reviews the topological evolution of the zeta converter across different AC and DC power conversion systems and their applications. It also presents a systematic classification of zeta and zeta-derived converters, a comparative analysis of prominent zeta converter topologies based on component count, intended applications, power rating, and key performance metrics. For DC applications, the performance metrics includes conversion efficiency, while for AC applications, it considers efficiency, power factor, and total harmonic distortion (THD). The study also proposes a topological performance index (TPI) to systematically evaluate the performance of the zeta converter topology against other widely used DC–DC converter topologies. Finally, this paper discusses the future opportunities and challenges associated with the continued development and application of the zeta converter.}},
  author       = {{Rahman, Showrov and Banik, Anindya and Hossain, Md. Kawsar and Islam, Mainul and Al-Hysam, Abdullah and Ahmed, Istiak}},
  issn         = {{2590-1745}},
  language     = {{eng}},
  publisher    = {{Elsevier}},
  series       = {{Energy Conversion and Management: X}},
  title        = {{Topological survey of zeta power converters from classical designs to emerging architectures}},
  url          = {{http://dx.doi.org/10.1016/j.ecmx.2026.102222}},
  doi          = {{10.1016/j.ecmx.2026.102222}},
  volume       = {{31}},
  year         = {{2026}},
}