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Multicellular organisms employ a variety of ways for cells to communicate with each other. Gap junctions are specialized proteins that form pores between neighboring cells in animals, connecting the cytoplasm between the two, and allowing for the exchange of molecules and ions. They are found in a wide range of invertebrate and vertebrate species, mediate numerous functions including cell differentiation and development, and are associated with numerous human diseases, including cardiac and...
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The cytoplasm of adjacent animal cells can exchange small molecules, ions, and secondary messengers via the communication channels which form the gap junctions. These junctions comprise a few hundred to thousands of molecular channels, each made of two halves, called the connexon hemichannel. A connexon is a hexamer of six transmembrane connexin proteins, which assemble radially, thus forming a pore or channel in the center. One connexon hemichannel docks with a corresponding connexon on the...
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As the human population continues to grow and use resources, we must be mindful of our planet’s natural limits. Sustainable development provides a pathway to maintain and improve human life now while also ensuring that future generations will have the resources that they need. The long-term success of sustainability efforts rests on understanding the interplay between human actions and ecological systems.
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The development of all multicellular organisms starts with the fusion of haploid cells called sperm and egg to form a diploid zygote. A zygote is a totipotent cell that can develop into a complete organism. The zygote undergoes cell division or cleavage to form an 8-cell mass. Until this stage, the cells are spherical, loosely attached, and remain totipotent. Totipotent cells are capable of developing both the embryonic and the extraembryonic tissues. However, as they continue to divide, they...
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Exercise induces a range of adaptations in muscle tissue, depending on the type and duration of activity. Such physical training can be broadly categorized into two types: endurance exercises and resistance exercises.
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Related Experiment Video

Updated: Feb 1, 2026

Developing High Performance GaP/Si Heterojunction Solar Cells
10:31

Developing High Performance GaP/Si Heterojunction Solar Cells

Published on: November 16, 2018

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Developing High Performance GaP/Si Heterojunction Solar Cells.

Chaomin Zhang1, Ehsan Vadiee2, Som Dahal2

  • 1School of Electrical, Computer, and Energy Engineering, Arizona State University; chaomin.zhang@asu.edu.

Journal of Visualized Experiments : Jove
|December 4, 2018
PubMed
Summary

High-performance Gallium Phosphide/Silicon (GaP/Si) heterojunction solar cells were developed. This advancement boosts silicon solar cell efficiency beyond theoretical limits using advanced epitaxial growth and selective contacts.

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Area of Science:

  • Materials Science
  • Solid State Physics
  • Photovoltaics

Background:

  • Silicon (Si)-based solar cells face efficiency limitations (Shockley-Queisser limit).
  • Integrating III-V materials with Si offers a pathway to surpass these limits.
  • Gallium Phosphide (GaP) is a promising III-V material for heterojunctions with Si.

Purpose of the Study:

  • To develop high-performance GaP/Si heterojunction solar cells.
  • To maintain high Si minority-carrier lifetime during GaP epitaxy.
  • To achieve high crystal quality of GaP layers on Si.

Main Methods:

  • Phosphorus (P)-diffusion and SiNx passivation layers were applied to the Si substrate.
  • Gallium Phosphide (GaP) layers were grown using molecular beam epitaxy (MBE).
  • Film quality was assessed using atomic force microscopy (AFM) and high-resolution X-ray diffraction (HRXRD).
  • Molybdenum Oxide (MoOx) was used as a hole-selective contact.

Main Results:

  • High Si minority-carrier lifetime was maintained during GaP growth.
  • High-quality GaP layers were epitaxially grown on a P-rich Si surface.
  • Molybdenum Oxide (MoOx) contact significantly increased short-circuit current density.
  • High device performance was achieved for GaP/Si heterojunction solar cells.

Conclusions:

  • The developed GaP/Si heterojunction solar cells demonstrate high performance.
  • The study establishes a viable method for enhancing Si-based photovoltaic devices.
  • This integration strategy offers a path towards exceeding current silicon solar cell efficiency.