BELLINGHAM, Washington, USA — 13 August 2026 — A new publication is opening its doors to researchers working on one of science’s most closely watched frontiers: the effort to transform quantum phenomena into practical technologies. SPIE, the international society for optics and photonics, has begun accepting submissions for Advanced Quantum Photonics (AQP), a peer-reviewed journal designed specifically for applied quantum research. The journal is intended to connect discoveries in quantum science with the engineering, hardware, and real-world applications needed to make those discoveries useful beyond the laboratory.
The launch addresses a growing divide in quantum publishing. Much of the existing literature focuses on fundamental theory, mathematical models, or highly controlled demonstrations of quantum behavior. While this work remains essential, many researchers are now confronting a different set of challenges: how to manufacture quantum devices reliably, preserve delicate quantum states, integrate optical components, reduce system noise, and operate complex platforms outside specialized research environments. AQP is positioning itself as a venue for studies that examine these practical questions alongside the underlying science, creating a bridge between quantum physics and deployable technology.
Quantum photonics uses individual particles of light, or photons, to generate, transmit, process, and measure quantum information. Unlike classical optical signals, quantum states can encode information through properties such as polarization, phase, arrival time, and path. Photons can also exhibit entanglement, a uniquely quantum correlation that links measurement outcomes even when particles are separated. These characteristics make photonic systems promising for secure communications, precision sensing, quantum computing, and the exchange of information between quantum processors. Yet the same states that give quantum systems their power are often extremely fragile, making the transition from proof-of-concept experiments to stable devices a demanding engineering task.
AQP is seeking contributions that show how quantum research can function in real technological settings. The journal will welcome work involving quantum materials, optical sources, detectors, components, architectures, and complete systems, particularly when studies explain the path from experimental result to implementation. Researchers are encouraged to describe technological context, identify engineering limitations, and discuss the applications their work could ultimately support. Such details may include the efficiency and stability of a photon source, the performance of a single-photon detector, the losses introduced by an optical circuit, or the methods used to control and measure a quantum device with high precision.
The emphasis on implementation reflects the rapid expansion of the quantum technology sector. Quantum communication platforms are being developed to distribute information through quantum states of light, while quantum sensors are being explored for applications ranging from navigation and medical imaging to geological surveys and environmental monitoring. Photonic approaches are also being investigated for quantum computing, where optical elements can generate and manipulate quantum states. In each case, progress depends not only on demonstrating a quantum effect but also on solving practical problems involving fabrication, packaging, calibration, scalability, energy consumption, and compatibility with existing telecommunications or computing infrastructure.
“ We are thrilled to invite the global research community to share their most groundbreaking discoveries in Advanced Quantum Photonics,” said Uriel Levy, the journal’s editor-in-chief. He described the publication as a dedicated platform for work emerging as quantum technologies move from foundational physics toward practical applications. According to Levy, optics and photonics are central to this transition because they provide the tools used to create, control, transmit, and detect quantum states. He also emphasized that SPIE’s peer-review process, international reach, and publishing infrastructure are intended to give authors broad visibility while maintaining rigorous scientific evaluation.
The journal’s scope is also designed to bring different communities into closer contact. Quantum research increasingly involves physicists, optical engineers, materials scientists, computer scientists, electrical engineers, manufacturers, and technology developers. An academic group may develop a new material for producing single photons, while an industrial team may be focused on integrating that material into a compact device. By encouraging contributions from industry as well as universities and national laboratories, AQP aims to highlight the full chain of development, from materials and components to demonstrations that operate under realistic conditions. Each issue is expected to include contributions from the quantum industry, including implementation and application demonstrations.
SPIE’s decision to establish the journal follows the society’s expanding involvement in quantum science and technology. The organization has added Quantum West to the Photonics West program and has also developed Quantum Catalyst, extending its conference activities into a field that is attracting major scientific and commercial investment. These initiatives provide researchers with opportunities to present emerging work, exchange technical knowledge, and build collaborations. AQP is intended to offer a natural publication route for research presented at such events, particularly studies whose focus is practical development rather than purely theoretical analysis.
The journal will also consider proposals for review articles and perspectives that evaluate progress across quantum materials, components, and systems. These contributions are expected to examine not only advances but also limitations, unresolved technical barriers, and opportunities for future research. That perspective could be especially valuable in a field where impressive demonstrations can sometimes obscure the difficulty of achieving repeatable performance at scale. Clear assessments of reliability, error sources, manufacturing constraints, and application requirements may help researchers distinguish between promising laboratory results and technologies ready for wider adoption.
For authors, SPIE is offering open-access publication at no cost during the journal’s first two years, a policy intended to increase the visibility and international circulation of accepted research. Open access allows readers to consult published studies without a subscription, potentially enabling faster exchange among academic groups, companies, policymakers, and the broader public. Manuscripts can be submitted through the SPIE Digital Library, which hosts the society’s journals, conference proceedings, and books. With quantum technologies developing across national and disciplinary boundaries, the new publication is seeking to become a central forum for research that explains not only what quantum devices can do, but also how they can be engineered to work in the real world.
Subject of Research: Applied quantum photonics, including quantum materials, components, systems, implementation challenges, and practical applications.
Article Title: SPIE Opens Submissions for Advanced Quantum Photonics, a New Journal for Applied Quantum Research
News Publication Date: 13 August 2026
Web References: SPIE; Advanced Quantum Photonics; Quantum West; Quantum Catalyst
References: SPIE announcement concerning the launch and submission opening of Advanced Quantum Photonics.
Image Credits: SPIE
Keywords
Quantum photonics, quantum technology, photonics, quantum computing, quantum communication, quantum sensing, quantum materials, optical engineering, SPIE, peer-reviewed journals, open access, applied physics
Tags: applied quantum researchbridging quantum science and engineeringdeploying quantum platformsoptical component integrationpeer-reviewed quantum research journalpractical quantum technologiespreserving quantum statesquantum device manufacturingquantum hardware developmentquantum information transmissionQuantum photonicsreducing quantum system noise


