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Discover the nexus of Science, Technology, Engineering, and Medicine in our Multidisciplinary Open Access Journal – a platform for breakthroughs and collaborative expertise, driving knowledge and innovation. | Important Update! Building on our inaugural year's success, adjustments to article processing charges will take effect in October. More details coming soon! | Discover the nexus of Science, Technology, Engineering, and Medicine in our Multidisciplinary Open Access Journal – a platform for breakthroughs and collaborative expertise, driving knowledge and innovation. | Important Update! Building on our inaugural year's success, adjustments to article processing charges will take effect in October. More details coming soon!
Engineering

Optical Engineering at IgMin Research | Engineering Group

Our mission is to foster interdisciplinary dialogue and accelerate the advancement of knowledge across a wide spectrum of scientific domains.

About

Optical Engineering plays a pivotal role at the crossroads of physics and engineering, focusing on the design, development, and application of optical systems and devices. It encompasses an array of technologies that harness and manipulate light for various purposes. From the fundamental principles of optics to cutting-edge advancements in photonics, Optical Engineering is a driving force behind innovations in fields such as telecommunications, imaging, and medical diagnostics.

In the realm of Optical Engineering, our multidisciplinary journal delves into the intricate interplay of light and matter. This topic explores the theoretical foundations and practical implementations of optical components, systems, and techniques. Researchers, practitioners, and enthusiasts in this field converge here to uncover new avenues for enhancing imaging resolution, developing novel optical sensors, and pushing the boundaries of data transmission through optical fibers.

From the earliest experiments with lenses and prisms to the latest breakthroughs in quantum optics, Optical Engineering has transformed how we see and interact with the world. The subfields under this topic encompass everything from designing precision optics for astronomical telescopes to crafting intricate micro-optoelectromechanical systems (MOEMS) for medical devices.

  • Geometrical Optics
  • Physical Optics
  • Optoelectronics
  • Lasers and Photonics
  • Imaging Systems
  • Fiber Optics Technology
  • Holography
  • Nonlinear Optics
  • Adaptive Optics
  • Spectroscopy
  • Optical Materials
  • Computational Optics
  • Quantum Optics
  • Diffraction Optics
  • Optics in Medicine and Biology
  • Remote Sensing
  • Optical Metrology
  • Nanophotonics
  • Photonic Devices
  • Optical Communications
  • Interferometry
  • Microscopy
  • Optical Sensors
  • Optics in Astronomy
  • Photonic Crystals

Engineering Group (1)

Mini Review Article ID: igmin230
Cite

Open Access Policy refers to a set of principles and guidelines aimed at providing unrestricted access to scholarly research and literature. It promotes the free availability and unrestricted use of research outputs, enabling researchers, students, and the general public to access, read, download, and distribute scholarly articles without financial or legal barriers. In this response, I will provide you with an overview of the history and latest resolutions related to Open Access Policy.

Analysis of Reliable Transmission Performance Optimization Methods for Satellite-to-Ground Laser Communication Links
by Zhi Liu, Qingfang Jiang, Kanglian Zhao, Xianzhu Liu, Wanzhuo Ma and Xiaolong Ni

The satellite-to-ground laser communication link plays a crucial role in addressing the technical bottleneck of high-speed information transmission between satellite and ground networks. However, the impact of atmospheric channel conditions poses challenges to the link performance. To overcome these challenges, this paper presents a comprehensive analysis of the characteristics and influencing factors of the satellite-to-ground laser communication link. It summarizes methods for optimizing the transmission performance of the link and proposes a...pproaches for optimizing, monitoring, and predicting the link performance through factors such as the optimization of ground station quantity and location, link availability, link transmission quality, and adaptive coding and modulation. These methods enable the optimization of the transmission performance of the satellite-to-ground laser communication link, thus significantly contributing to the realization of high-speed and reliable laser communication between satellite and ground networks.

Optical Engineering