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MicroCloud Hologram Inc. Develops Quantum Nonlinear Optical Holography Technology to Assist in the Generation of Spatial Entangled Qudits

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MicroCloud Hologram Inc. (NASDAQ: HOLO) has announced the development of Quantum Nonlinear Optical Holography (QNOH) technology for generating spatially entangled qudits. This breakthrough leverages the Spontaneous Parametric Down-Conversion process in quantum optics, using a two-dimensional patterned nonlinear photonic crystal to shape spatial quantum correlations of entangled photon pairs.

The technology's key innovation lies in its ability to generate high-dimensional quantum systems (qudits) without complex pump shaping, offering greater information storage capacity than traditional qubits. The process involves photon source selection, 2D patterned crystal design, and spatial quantum correlation shaping, verified through CHSH inequality violation tests.

This advancement has significant implications for quantum key distribution (QKD) and quantum computing, potentially enabling higher key transmission rates, stronger interference resistance, and improved computational efficiency in quantum systems.

MicroCloud Hologram Inc. (NASDAQ: HOLO) ha annunciato lo sviluppo della tecnologia Quantum Nonlinear Optical Holography (QNOH) per generare qudits entangled spaziali. Questa innovazione sfrutta il processo di Spontaneous Parametric Down-Conversion nella ottica quantistica, utilizzando un cristallo fotonico non lineare a modello bidimensionale per plasmare le correlazioni quantistiche spaziali di coppie di fotoni entangled.

Il principale progresso della tecnologia sta nella sua capacità di generare sistemi quantistici ad alta dimensione (qudits) senza una complessa modellazione della pompa, offrendo una maggiore capacità di immagazzinamento di informazioni rispetto ai tradizionali qubit. Il processo coinvolge la selezione della sorgente di fotoni, la progettazione del cristallo a modello 2D e la modellazione delle correlazioni quantistiche spaziali, verificate attraverso test di violazione dell'ineguaglianza di CHSH.

Questo progresso ha implicazioni significative per la distribuzione quantistica delle chiavi (QKD) e il calcolo quantistico, potenzialmente consentendo tassi di trasmissione delle chiavi più elevati, una maggiore resistenza alle interferenze e una migliore efficienza computazionale nei sistemi quantistici.

MicroCloud Hologram Inc. (NASDAQ: HOLO) ha anunciado el desarrollo de la tecnología Quantum Nonlinear Optical Holography (QNOH) para generar qudits entrelazados espacialmente. Este avance aprovecha el proceso de Spontaneous Parametric Down-Conversion en la óptica cuántica, utilizando un cristal fotónico no lineal con un patrón bidimensional para dar forma a las correlaciones cuánticas espaciales de pares de fotones entrelazados.

La innovación clave de la tecnología radica en su capacidad para generar sistemas cuánticos de alta dimensión (qudits) sin una compleja modelación de la bomba, ofreciendo una mayor capacidad de almacenamiento de información que los qubits tradicionales. El proceso involucra la selección de la fuente de fotones, el diseño del cristal 2D y la modelación de las correlaciones cuánticas espaciales, verificadas a través de pruebas de violación de la desigualdad de CHSH.

Este avance tiene implicaciones significativas para la distribución cuántica de claves (QKD) y la computación cuántica, potencialmente habilitando mayores tasas de transmisión de claves, una mayor resistencia a interferencias y una mejor eficiencia computacional en los sistemas cuánticos.

마이크로클라우드 홀로그램 주식회사 (NASDAQ: HOLO)양자 비선형 광 홀로그램 (QNOH) 기술 개발을 발표했습니다. 이 기술은 공간적으로 얽힌 qudit를 생성하기 위한 것으로, 양자 광학에서 자발적 매개변수 하강 변환 과정(Spontaneous Parametric Down-Conversion)을 활용하여, 2D 패턴 비선형 포토닉 결정체를 사용하여 얽힌 광자 쌍의 공간 양자 상관관계를 형성합니다.

이 기술의 핵심 혁신점은 복잡한 펌프 형성 없이 고차원 양자 시스템(qudits)을 생성할 수 있다는 점으로, 전통적인 큐비트보다 더 많은 정보 저장 용량을 제공합니다. 이 과정은 광원 선택, 2D 패턴 결정 디자인, 그리고 공간 양자 상관관계 형성을 포함하며, CHSH 부등식 위반 테스트를 통해 검증되었습니다.

이 발전은 양자 키 분배 (QKD)와 양자 컴퓨팅에 중대한 영향을 미치며, 잠재적으로 더 높은 키 전송 속도, 더 강한 간섭 저항성 및 향상된 계산 효율성을 가능하게 합니다.

MicroCloud Hologram Inc. (NASDAQ: HOLO) a annoncé le développement de la technologie Quantum Nonlinear Optical Holography (QNOH) pour générer des qudits liés spatialement. Cette avancée exploite le processus de Spontaneous Parametric Down-Conversion dans l'optique quantique, en utilisant un cristal photonique non linéaire à motif bidimensionnel pour façonner les corrélations quantiques spatiales des paires de photons intriqués.

L'innovation clé de la technologie réside dans sa capacité à générer des systèmes quantiques de haute dimension (qudits) sans un façonnage complexe de la pompe, offrant une plus grande capacité de stockage d'informations que les qubits traditionnels. Le processus implique la sélection de la source de photons, la conception du cristal à motif 2D et la mise en forme des corrélations quantiques spatiales, vérifiées par des tests de violation de l'inégalité de CHSH.

Cette avancée a des implications significatives pour la distribution quantique de clés (QKD) et le calcul quantique, permettant potentiellement des taux de transmission de clés plus élevés, une meilleure résistance aux interférences et une efficacité computationnelle améliorée dans les systèmes quantiques.

MicroCloud Hologram Inc. (NASDAQ: HOLO) hat die Entwicklung der Technologie Quantum Nonlinear Optical Holography (QNOH) zur Erzeugung räumlich miteinander verbundener Qudits angekündigt. Dieser Durchbruch nutzt den Prozess der spontanen parametrischen Herabkonversion in der Quantenoptik und verwendet einen zweidimensionalen gemusterten nichtlinearen photonischen Kristall, um räumliche Quantenkorrelationen von verschränkten Photonpaaren zu gestalten.

Die Schlüsselinnovation der Technologie liegt in ihrer Fähigkeit, hochdimensionale Quantensysteme (Qudits) ohne komplexe Pumpgestaltungen zu erzeugen, was eine höhere Informationsspeicherkapazität als traditionelle Qubits bietet. Der Prozess umfasst die Auswahl der Photonquelle, das Design des 2D-musterten Kristalls und die Gestaltung der räumlichen Quantenkorrelationen, die durch Tests zur Verletzung der CHSH-Ungleichheit überprüft werden.

Dieser Fortschritt hat signifikante Implikationen für quantente Schlüsselverteilung (QKD) und Quantencomputing, da er potenziell höhere Schlüsselübertragungsraten, stärkeren Widerstand gegen Interferenzen und eine verbesserte rechnerische Effizienz in Quanten Systemen ermöglicht.

Positive
  • Development of innovative QNOH technology for quantum computing applications
  • Technology enables higher information storage capacity compared to traditional qubits
  • Potential for improved efficiency in quantum communication networks
  • Enhanced security features for quantum key distribution
Negative
  • None.

Insights

The development of Quantum Nonlinear Optical Holography (QNOH) by HOLO represents a significant technical advancement in quantum computing and communication. The technology's ability to generate spatially entangled qudits without complex pump shaping is revolutionary, potentially reducing implementation costs and complexity in quantum systems.

From a market perspective, this breakthrough positions HOLO uniquely in the quantum technology sector. The quantum computing market is projected to reach $65 billion by 2030 and HOLO's QNOH technology could capture a significant share. Their approach to generating high-dimensional quantum states (qudits) offers superior information density compared to traditional qubits, potentially accelerating quantum computing applications.

However, investors should note that commercialization timelines for quantum technologies typically span 5-10 years. While HOLO's technology shows promise, the path to revenue generation remains uncertain. The company's $41.8 million market cap suggests the market is still cautiously evaluating the commercial viability of this breakthrough.

The technical implementation of HOLO's QNOH technology demonstrates remarkable innovation in quantum state manipulation. The use of a two-dimensional patterned nonlinear photonic crystal to control spatial quantum correlations represents a fundamental shift from traditional approaches.

The technology's ability to violate the CHSH inequality while maintaining stable quantum states is particularly noteworthy. This validates the quantum nature of the system and suggests robust entanglement preservation, important for practical applications. The direct generation of spatially entangled qudits without complex pump shaping could significantly reduce system complexity and improve scalability.

From a quantum computing perspective, the higher-dimensional quantum states (qudits) enabled by this technology could theoretically process exponentially more information than traditional qubits. This could translate to substantial performance advantages in quantum algorithms and quantum key distribution systems.

HOLO's breakthrough comes at a strategic time in the quantum technology market. With tech giants like IBM, Google and Microsoft investing heavily in quantum computing, HOLO's novel approach to quantum state generation could attract strategic partnerships or acquisition interest.

The company's focus on quantum key distribution (QKD) applications is particularly relevant given the growing cybersecurity concerns around quantum computing threats to current encryption methods. The global quantum cryptography market is expected to reach $5.5 billion by 2027, presenting a clear commercialization pathway for HOLO's technology.

Despite the promising technology, HOLO's small market cap and early-stage development status suggest significant execution risks. Investors should monitor the company's ability to protect its intellectual property and establish commercial partnerships as key indicators of future success.

SHENZHEN, China, Jan. 14, 2025 /PRNewswire/ -- MicroCloud Hologram Inc. (NASDAQ: HOLO), ("HOLO" or the "Company"), today announced the development and application of Quantum Nonlinear Optical Holography (QNOH) technology to directly generate spatially entangled qudits. This technology leverages the Spontaneous Parametric Down-Conversion (SPDC) process in quantum optics, precisely shaping the spatial quantum correlations of entangled photon pairs within a two-dimensional patterned nonlinear photonic crystal, without the need for complex pump shaping. This innovation not only breaks through the limitations of traditional optics but also offers unprecedented application prospects for quantum key distribution (QKD) and quantum computing based on spatial degrees of freedom.

Quantum Nonlinear Optical Holography technology combines the advantages of quantum optics, nonlinear optics, and holography, aiming to directly shape the spatial properties of quantum photons through nonlinear optical processes. Traditional nonlinear optical holography has been widely applied in the field of classical optics, particularly in areas such as information storage, beam control, and optical communication. However, its application in the quantum domain has been relatively scarce, as shaping quantum states typically requires higher precision and more complex interventions.

The key innovation of Quantum Nonlinear Optical Holography technology is its ability to directly generate spatially entangled qudits through the Spontaneous Parametric Down-Conversion process, overcoming the limitations of conventional quantum optical techniques. A qudit is a high-dimensional quantum system, which, compared to the traditional qubit, has more degrees of freedom and can store more information. Therefore, it holds greater promise for applications in quantum computing and quantum communication.

The core implementation of HOLO's Quantum Nonlinear Optical Holography technology relies on the Spontaneous Parametric Down-Conversion process. In this process, a single high-energy photon enters a nonlinear optical medium (such as a BBO crystal) and, through interaction with the crystal, splits into two lower-energy photons, which are referred to as the signal photon and the idler photon. These two photons exhibit quantum entanglement, meaning their states are tightly correlated, regardless of the spatial distance between them.

Unlike traditional quantum optical technologies, this technique uses a two-dimensional patterned nonlinear photonic crystal. In such a crystal, photons can be precisely controlled in predefined spatial degrees of freedom. By manipulating the patterned structure of the crystal, the spatial quantum correlations of the entangled photon pairs can be directionally shaped, thereby generating the desired quantum states.

What sets HOLO's Quantum Nonlinear Optical Holography technology apart is that it does not require complex pump light shaping. Traditional quantum optical systems typically rely on specific shapes and frequency adjustments of the pump light source to ensure that the generated quantum states meet the desired criteria. However, QNOH technology achieves direct manipulation of the spatial properties of entangled photon pairs by controlling the structure and material properties of the nonlinear photonic crystal, making the process more efficient and stable.

In traditional quantum information processing, the quantum bit (qubit) is widely used as the basic unit. However, the computational and storage capacity of a qubit is limited by its binary states (0 or 1). In contrast, a qudit (a high-dimensional quantum system) can process information in higher dimensions, offering greater potential for quantum computing and quantum communication.

One of the biggest breakthroughs of HOLO technology is its ability to generate spatially entangled qudits. By precisely controlling the design of the photonic crystal, the technical team successfully endowed photon pairs with multiple degrees of freedom within a two-dimensional space, allowing each entangled photon pair to move beyond traditional binary states and expand into higher dimensions. These quantum states can manifest as different quantum modes and frequencies, significantly enhancing the capacity and diversity of the quantum system.

HOLO's Quantum Nonlinear Optical Holography technology generates spatially entangled qudits through the following steps:

Photon Source Selection and Control: Through the precisely designed nonlinear photonic crystal, an appropriate pump light source is chosen to excite the signal and idler photons in the Spontaneous Parametric Down-Conversion process. These photon pairs are highly entangled and can be precisely controlled in spatial degrees of freedom.

2D Patterned Crystal Design: A two-dimensional patterned nonlinear photonic crystal is used to control the propagation paths and interactions of photons within the crystal, allowing the spatial quantum correlations of the signal and idler photon pairs to be shaped according to design requirements. This structure not only enhances the stability of quantum entanglement but also enables information encoding and decoding across different dimensions.

Shaping Spatial Quantum Correlations: By adjusting the phase and amplitude at different positions within the photonic crystal, the spatial correlations of the generated entangled photon pairs are ensured to match the desired quantum state. This allows the quantum information of the photons to be transmitted in a more efficient and multidimensional manner.

Quantum State Verification: Experimental verification shows that the quantum states generated by this technology not only possess spatial quantum correlations but also violate the Clauser-Horne-Shimony-Holt (CHSH) inequality, proving their entangled nature. According to the fundamental principles of quantum mechanics, the violation of this inequality indicates the authenticity of quantum information and the validity of quantum entanglement.

The successful development of HOLO's QNOH technology has brought a significant breakthrough to the fields of quantum key distribution (QKD) and quantum communication. Entanglement-based quantum key distribution is one of the core technologies in quantum communication today, ensuring the security of key exchange through the properties of quantum entanglement. The high-dimensional entangled qudits generated by the QNOH technology can provide higher key transmission rates and stronger resistance to interference, thereby enhancing the security and efficiency of quantum communication networks.

Additionally, HOLO's QNOH technology is also noteworthy for its application in quantum computing. Since quantum computing can process information in high-dimensional quantum states, the generation of qudits will greatly improve the parallelism and efficiency of quantum computing. Traditional quantum computing uses quantum bits for computation, while high-dimensional qudits can store more information and perform more complex computational tasks, thereby accelerating the execution of quantum algorithms.

HOLO's Quantum Nonlinear Optical Holography technology not only brings new possibilities to quantum communication and quantum computing but also paves the way for the future development of quantum information science. In the future, as this technology continues to improve, it may find broader applications in fields such as quantum networks, quantum encryption, and quantum simulation.

In future research, optimizing the design of two-dimensional photonic crystals to further enhance the efficiency and stability of spatially entangled qudit generation will become a key issue in the field of quantum optics. Meanwhile, Quantum Nonlinear Optical Holography technology is also expected to integrate with other quantum technologies, such as quantum sensing and quantum imaging, opening up more application scenarios in the field of quantum science.

The successful development of Quantum Nonlinear Optical Holography technology marks a significant advancement in the field of quantum optics. By precisely generating spatially entangled qudits, this technology offers a fresh perspective and more powerful tools for various fields, including quantum communication, quantum computing, and quantum information processing. As quantum technology continues to mature, quantum networks and quantum computers in the future are expected to enter a new era of greater efficiency and security, driven by this innovative technology.

About MicroCloud Hologram Inc.

MicroCloud is committed to providing leading holographic technology services to its customers worldwide. MicroCloud's holographic technology services include high-precision holographic light detection and ranging ("LiDAR") solutions, based on holographic technology, exclusive holographic LiDAR point cloud algorithms architecture design, breakthrough technical holographic imaging solutions, holographic LiDAR sensor chip design and holographic vehicle intelligent vision technology to service customers that provide reliable holographic advanced driver assistance systems ("ADAS"). MicroCloud also provides holographic digital twin technology services for customers and has built a proprietary holographic digital twin technology resource library. MicroCloud's holographic digital twin technology resource library captures shapes and objects in 3D holographic form by utilizing a combination of MicroCloud's holographic digital twin software, digital content, spatial data-driven data science, holographic digital cloud algorithm, and holographic 3D capture technology. For more information, please visit http://ir.mcholo.com/

Safe Harbor Statement

This press release contains forward-looking statements as defined by the Private Securities Litigation Reform Act of 1995. Forward-looking statements include statements concerning plans, objectives, goals, strategies, future events or performance, and underlying assumptions and other statements that are other than statements of historical facts. When the Company uses words such as "may," "will," "intend," "should," "believe," "expect," "anticipate," "project," "estimate," or similar expressions that do not relate solely to historical matters, it is making forward-looking statements. Forward-looking statements are not guarantees of future performance and involve risks and uncertainties that may cause the actual results to differ materially from the Company's expectations discussed in the forward-looking statements. These statements are subject to uncertainties and risks including, but not limited to, the following: the Company's goals and strategies; the Company's future business development; product and service demand and acceptance; changes in technology; economic conditions; reputation and brand; the impact of competition and pricing; government regulations; fluctuations in general economic; financial condition and results of operations; the expected growth of the holographic industry and business conditions in China and the international markets the Company plans to serve and assumptions underlying or related to any of the foregoing and other risks contained in reports filed by the Company with the Securities and Exchange Commission ("SEC"), including the Company's most recently filed Annual Report on Form 10-K and current report on Form 6-K and its subsequent filings. For these reasons, among others, investors are cautioned not to place undue reliance upon any forward-looking statements in this press release. Additional factors are discussed in the Company's filings with the SEC, which are available for review at www.sec.gov. The Company undertakes no obligation to publicly revise these forward-looking statements to reflect events or circumstances that arise after the date hereof.

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SOURCE MicroCloud Hologram Inc.

FAQ

What is the new QNOH technology developed by HOLO and how does it work?

HOLO's Quantum Nonlinear Optical Holography (QNOH) technology generates spatially entangled qudits using a two-dimensional patterned nonlinear photonic crystal. It works through Spontaneous Parametric Down-Conversion, where a high-energy photon splits into two entangled lower-energy photons, enabling precise control of quantum correlations without complex pump shaping.

How does HOLO's QNOH technology improve upon traditional quantum computing methods?

HOLO's QNOH technology improves upon traditional methods by using qudits instead of qubits, offering higher dimensional quantum states and greater information storage capacity. It achieves this without requiring complex pump light shaping, making the process more efficient and stable.

What are the potential applications of HOLO's new quantum technology?

The technology has applications in quantum key distribution (QKD), quantum computing, quantum communication networks, quantum encryption, and quantum simulation. It enables higher key transmission rates and stronger interference resistance in quantum communication systems.

How does HOLO verify the effectiveness of their QNOH technology?

HOLO verifies their QNOH technology through experimental testing that demonstrates violation of the Clauser-Horne-Shimony-Holt (CHSH) inequality, proving the authentic quantum entanglement and validity of the quantum information generated.

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