High-dimensional Entanglement-based Quantum Key Distribution

High-dimensional Entanglement-based Quantum Key Distribution
Author: Tian Zhong (Ph. D.)
Publisher:
Total Pages: 148
Release: 2013
Genre:
ISBN:

Download High-dimensional Entanglement-based Quantum Key Distribution Book in PDF, Epub and Kindle

Conventional quantum key distribution (QKD) uses a discrete two-dimensional Hilbert space for key encoding, such as the polarization state of a single photon. In contrast, high-dimensional QKD allows encoding onto a larger state space, such as multiple levels of a continuous variable of a single photon, thus enabling the system to achieve higher photon information efficiency (bits/photon) and potentially higher key rate (bits/second). However, its deployment requires high-performance source, detector, and routing technologies tailored to the specific large-alphabet encoding scheme. One such high-dimensional QKD system of interest is based on time-energy entanglement, in which keys are derived from the arrival times of photon pairs generated from continuous-wave (CW) spontaneous parametric downconversion (SPDC). This thesis focuses on the implementation of a time-energy entanglement-based QKD system, with the development of several enabling technologies including an efficient single-spatial-mode source of time-energy entangled photons based on a periodically-poled KTiOPO4 (PPKTP) waveguide, GHz self-differencing InGaAs singlephoton avalanche diodes (SPADs), and the first demonstration of non-locally dispersion-canceled Franson quantum interferometry achieving 99.6% visibility. We then utilize these technologies to perform two full QKD protocols. The first protocol uses SPDCgenerated entangled photons for both key extraction and Franson interferometry, yielding a secure key rate -90 kbits/s with up to 4 bits/photon after error-correction and privacy amplification. The second protocol deploys two different photon sources: an amplified spontaneous emission (ASE) source is pulse-position modulated to perform random key generation, and a CW-SPDC source is for Franson security check. In this latter case, we have achieved a secure key rate 7.3 Mbits/s with 2.9 bits/photon, which represents the state-of-the-art in today's QKD technology.

High-Rate, High-Dimensional Quantum Key Distribution Systems

High-Rate, High-Dimensional Quantum Key Distribution Systems
Author: Nurul T. Islam
Publisher: Springer
Total Pages: 140
Release: 2018-10-01
Genre: Computers
ISBN: 3319989294

Download High-Rate, High-Dimensional Quantum Key Distribution Systems Book in PDF, Epub and Kindle

This book describes a broad research program on quantum communication. Here, a cryptographic key is exchanged by two parties using quantum states of light and the security of the system arises from the fundamental properties of quantum mechanics. The author developed new communication protocols using high-dimensional quantum states so that more than one classical bit is transferred by each photon. This approach helps circumvent some of the non-ideal properties of the experimental system, enabling record key rates on metropolitan distance scales. Another important aspect of the work is the encoding of the key on high-dimensional phase-randomized weak coherent states, combined with so-called decoy states to thwart a class of possible attacks on the system. The experiments are backed up by a rigorous security analysis of the system, which accounts for all known device non-idealities. The author goes on to demonstrate a scalable approach for increasing the dimension of the quantum states, and considers attacks on the system that use optimal quantum cloning techniques. This thesis captures the current state-of-the-art of the field of quantum communication in laboratory systems, and demonstrates that phase-randomized weak coherent states have application beyond quantum communication.

Twisted Photons

Twisted Photons
Author: Juan P. Torres
Publisher: John Wiley & Sons
Total Pages: 393
Release: 2011-03-31
Genre: Science
ISBN: 3527635378

Download Twisted Photons Book in PDF, Epub and Kindle

This book deals with applications in several areas of science and technology that make use of light which carries orbital angular momentum. In most practical scenarios, the angular momentum can be decomposed into two independent contributions: the spin angular momentum and the orbital angular momentum. The orbital contribution affords a fundamentally new degree of freedom, with fascinating and wide-spread applications. Unlike spin angular momentum, which is associated with the polarization of light, the orbital angular momentum arises as a consequence of the spatial distribution of the intensity and phase of an optical field, even down to the single photon limit. Researchers have begun to appreciate its implications for our understanding of the ways in which light and matter can interact, and its practical potential in different areas of science and technology.

Single-Photon Generation and Detection

Single-Photon Generation and Detection
Author:
Publisher: Academic Press
Total Pages: 593
Release: 2013-11-29
Genre: Science
ISBN: 0123876966

Download Single-Photon Generation and Detection Book in PDF, Epub and Kindle

Single-photon generation and detection is at the forefront of modern optical physics research. This book is intended to provide a comprehensive overview of the current status of single-photon techniques and research methods in the spectral region from the visible to the infrared. The use of single photons, produced on demand with well-defined quantum properties, offers an unprecedented set of capabilities that are central to the new area of quantum information and are of revolutionary importance in areas that range from the traditional, such as high sensitivity detection for astronomy, remote sensing, and medical diagnostics, to the exotic, such as secretive surveillance and very long communication links for data transmission on interplanetary missions. The goal of this volume is to provide researchers with a comprehensive overview of the technology and techniques that are available to enable them to better design an experimental plan for its intended purpose. The book will be broken into chapters focused specifically on the development and capabilities of the available detectors and sources to allow a comparative understanding to be developed by the reader along with and idea of how the field is progressing and what can be expected in the near future. Along with this technology, we will include chapters devoted to the applications of this technology, which is in fact much of the driver for its development. This is set to become the go-to reference for this field. Covers all the basic aspects needed to perform single-photon experiments and serves as the first reference to any newcomer who would like to produce an experimental design that incorporates the latest techniques Provides a comprehensive overview of the current status of single-photon techniques and research methods in the spectral region from the visible to the infrared, thus giving broad background that should enable newcomers to the field to make rapid progress in gaining proficiency Written by leading experts in the field, among which, the leading Editor is recognized as having laid down the roadmap, thus providing the reader with an authenticated and reliable source

High-dimensional Quantum Communication Over Deployed Fiber

High-dimensional Quantum Communication Over Deployed Fiber
Author: Catherine Lee (Ph. D.)
Publisher:
Total Pages: 143
Release: 2018
Genre:
ISBN:

Download High-dimensional Quantum Communication Over Deployed Fiber Book in PDF, Epub and Kindle

Quantum key distribution (QKD) exploits the inherent strangeness of quantum mechanics to improve secure communication, enabling two pre-authenticated participants to establish symmetric encryption keys over long distances, without making any assumptions about the computational abilities of an adversary. QKD commonly relies on the transmission and detection of single photons to distribute the secret keys, but the secret-key generation rates are often limited by hardware, namely the ability to produce or detect nonclassical states of light. We address this challenge by using high-dimensional encoding to increase the secure information yield per detected photon. In this thesis, we present security analysis for and the first demonstrations of a resource-efficient high-dimensional QKD protocol, including two varieties of implementation that each have different strengths and weaknesses. We introduce a 42-km deployed fiber testbed that we use to demonstrate our high-dimensional QKD protocol. We also demonstrate the violation of a steering inequality, confirming that we can produce entanglement in the lab and distribute it over the deployed fiber. By these experiments, we demonstrate both the utility of our high-dimensional QKD protocol and the feasibility of our testbed for further applications in quantum communication and networking.

Optics in Our Time

Optics in Our Time
Author: Mohammad D. Al-Amri
Publisher: Springer
Total Pages: 509
Release: 2016-12-12
Genre: Science
ISBN: 3319319035

Download Optics in Our Time Book in PDF, Epub and Kindle

Light and light based technologies have played an important role in transforming our lives via scientific contributions spanned over thousands of years. In this book we present a vast collection of articles on various aspects of light and its applications in the contemporary world at a popular or semi-popular level. These articles are written by the world authorities in their respective fields. This is therefore a rare volume where the world experts have come together to present the developments in this most important field of science in an almost pedagogical manner. This volume covers five aspects related to light. The first presents two articles, one on the history of the nature of light, and the other on the scientific achievements of Ibn-Haitham (Alhazen), who is broadly considered the father of modern optics. These are then followed by an article on ultrafast phenomena and the invisible world. The third part includes papers on specific sources of light, the discoveries of which have revolutionized optical technologies in our lifetime. They discuss the nature and the characteristics of lasers, Solid-state lighting based on the Light Emitting Diode (LED) technology, and finally modern electron optics and its relationship to the Muslim golden age in science. The book’s fourth part discusses various applications of optics and light in today's world, including biophotonics, art, optical communication, nanotechnology, the eye as an optical instrument, remote sensing, and optics in medicine. In turn, the last part focuses on quantum optics, a modern field that grew out of the interaction of light and matter. Topics addressed include atom optics, slow, stored and stationary light, optical tests of the foundation of physics, quantum mechanical properties of light fields carrying orbital angular momentum, quantum communication, and Wave-Particle dualism in action.

High-dimensional Quantum Key Distribution with Frequency Encoding

High-dimensional Quantum Key Distribution with Frequency Encoding
Author: Changchen Chen
Publisher:
Total Pages: 0
Release: 2021
Genre:
ISBN:

Download High-dimensional Quantum Key Distribution with Frequency Encoding Book in PDF, Epub and Kindle

The second part of this thesis studies the time-domain characterization of time-energy entangled photon pairs. We present here the first experimental demonstration of the conjugate-Franson interferometer (CFI). We show that the CFI visibility can certify time-energy entanglement and detect the biphoton spectral phase, which Franson interferometry and Hong-Ou-Mandel interferometry are incapable of.

Broad Bandwidth and High Dimensional Quantum Memory Based on Atomic Ensembles

Broad Bandwidth and High Dimensional Quantum Memory Based on Atomic Ensembles
Author: Dong-Sheng Ding
Publisher: Springer
Total Pages: 136
Release: 2017-12-26
Genre: Science
ISBN: 9811074763

Download Broad Bandwidth and High Dimensional Quantum Memory Based on Atomic Ensembles Book in PDF, Epub and Kindle

This thesis presents an experimental study of quantum memory based on cold atomic ensembles and discusses photonic entanglement. It mainly focuses on experimental research on storing orbital angular momentum, and introduces readers to methods for storing a single photon carried by an image or an entanglement of spatial modes. The thesis also discusses the storage of photonic entanglement using the Raman scheme as a step toward implementing high-bandwidth quantum memory. The storage of photonic entanglement is central to achieving long-distance quantum communication based on quantum repeaters and scalable linear optical quantum computation. Addressing this key issue, the findings presented in the thesis are very promising with regard to future high-speed and high-capacity quantum communications.

High-dimensional Quantum Information Processing with Time-Frequency Qudits

High-dimensional Quantum Information Processing with Time-Frequency Qudits
Author: Kai-Chi Chang
Publisher:
Total Pages: 200
Release: 2022
Genre:
ISBN:

Download High-dimensional Quantum Information Processing with Time-Frequency Qudits Book in PDF, Epub and Kindle

High-dimensional entanglement in qudit states provides a route to realize large-scale, precisely controllable, practical systems for advanced quantum information processing, quantum secured communications, quantum metrology, and complex quantum computation. Many quantum platforms are currently subject to extensive research for superdense encoding, such as trapped ions, superconducting circuits, defect centers in solid-state crystals, mechanical oscillators, and photons. While all platforms provide unique advantages as well as challenges, optical quantum states are of particular interest, because they can interact with other quantum systems, and can be transmitted over long distances while preserving their quantum coherence. A large variety of quantum resources using optical quantum states has been demonstrated, however most of implementations suffer from high complexity, ultimately limiting their scalability. Mode-locked biphoton frequency combs (BFCs), which are intrinsically multimode in the temporal and frequency degrees of freedom within a single spatial mode, naturally facilitating the generation and manipulation of high-dimensional entanglement in large-scale quantum systems. Such BFCs have been demonstrated over fiber- and chip-compatible platforms. However, there is a huge gap between the maximal number of time and frequency modes and the dimensionality of the entanglement characterized experimentally, with the major challenge of certifying such high-dimensional entanglement by a number of accessible measurements. Quantifying and certifying the amount of entanglement in a high-dimensional quantum system has been a long-standing question in the quantum optics community. Therefore, there is an urgent need to generate and to certify large and complex photon states without increasing source complexity, while still enabling coherent quantum state control and detection. In this dissertation, we focus on realization, quantification and applications of such high-dimensional optical quantum states. First, we demonstrated a high-dimensional doubly-resonant BFC by achieving record-high Hong-Ou-Mandel (HOM)-interference revivals and Franson interference recurrences. We certify a Hilbert-space high-dimensionality of at least 648 using a time-bin Schmidt number of 18 and frequency-polarization hyperentanglement in such a BFC. Second, we demonstrated first high-dimensional entanglement distribution using a singly-resonant BFC with the record-high Franson visibility 98.81% with 16 time-bins and average frequency-binned Franson visibility of 98.03% for 5 frequency-pairs at a 10-km distance. High-dimensional time-frequency entanglement is certified by frequency-bin Schmidt number of 4.17 and a measured time-bin Schmidt number of 13.13. Third, we explore the role of cavity finesse within our singly-resonant BFCs. Increasing cavity finesse can increase the probability to detect single-photons at multiple cavity round-trips and can flatten the fall-off of Franson recurrence visibilities. Fourth, we demonstrate first genuine time-reversible ultranarrow photon-pair source with over 5,000 modes using asymmetric singly-resonant BFCs operating in telecom-band. Fifth, we demonstrate essential functionalities for quantum networking, including frequency-multiplexed high-dimensional time-bin encoding with our BFC sources. We perform proof-of-principle frequency-multiplexed high-dimensional time-bin (QKD) using a singly-resonant BFC. We measured photon information efficiency (PIE) up to 15 bits per coincidence for 5 frequency pairs of a singly-resonant BFC and 5 kbits/s raw key rate towards high-dimensional quantum communication. The secure key rate (SKR) is obtained to be 1.1 kbits/s with PIE of 2.41 bits per coincidence, secured by our high-visibility frequency-binned Franson interference. Finally, we investigated the first experimental demonstration of chip-scale two-qubit SWAP gate that can be used for scalable high-dimensional quantum computing. We observe high fidelity in the SWAP gate logical basis, and phase coherent quantum fringes after SWAP operation with high visibility. We have investigated the fundamental physics of BFC on scaling its Hilbert space dimensionality for complex quantum information processing, the versability of singly-resonant BFC for real-world quantum photon efficient communications, and the silicon photonic two-qubit SWAP gate operation towards high-dimensional quantum optical computations. Our work represents an important step forward in the generation, certification and distribution of complex quantum states using telecom compatible fiber systems in a single spatial mode. Such large-scale quantum states would then be well suited for the applications, including high-dimensional entanglement teleportation, quantum simulations, interconnecting matter qubits, on-chip quantum computing and storage, and various quantum communication protocols based on superdense time- and frequency-bin encodings.

Physical-Layer Security and Quantum Key Distribution

Physical-Layer Security and Quantum Key Distribution
Author: Ivan B. Djordjevic
Publisher: Springer Nature
Total Pages: 472
Release: 2019-09-14
Genre: Computers
ISBN: 3030275655

Download Physical-Layer Security and Quantum Key Distribution Book in PDF, Epub and Kindle

This textbook integrates the most advanced topics of physical-layer security, cryptography, covert/stealth communications, quantum key distribution (QKD), and cyber security to tackle complex security issues. After introducing the reader to various concepts and practices, the author addresses how these can work together to target problems, rather than treating them as separate disciplines. This book offers students an in-depth exposition on: cryptography, information-theoretic approach to cryptography, physical-layer security, covert/stealth/low-probability of detection communications, quantum information theory, QKD, and cyber security; to mention few. The goal is to provide a unified description of the most advanced topics related to: (i) modern cryptography, (ii) physical-layer security, (iii) QKD, (iv) covert communications, and (v) cyber security. Each chapter is followed by a set of problems. Also, for readers to better understand the book, an appendix covers all needed background. Homework problems and lecture notes are available online. The book does not require any prior knowledge or prerequisite material.