Sign in to use this feature.

Years

Between: -

Subjects

remove_circle_outline
remove_circle_outline
remove_circle_outline
remove_circle_outline
remove_circle_outline
remove_circle_outline
remove_circle_outline
remove_circle_outline
remove_circle_outline

Journals

Article Types

Countries / Regions

Search Results (22)

Search Parameters:
Keywords = light–matter entanglement

Order results
Result details
Results per page
Select all
Export citation of selected articles as:
21 pages, 2362 KiB  
Article
Non-Markovian Dynamics of Giant Atoms Embedded in an One-Dimensional Photonic Lattice with Synthetic Chirality
by Vassilios Yannopapas
Photonics 2025, 12(6), 527; https://doi.org/10.3390/photonics12060527 - 22 May 2025
Cited by 1 | Viewed by 417
Abstract
In this paper we investigate the non-Markovian dynamics of a giant atom coupled to a one-dimensional photonic lattice with synthetic gauge fields. By engineering a complex-valued hopping amplitude, we break reciprocity and explore how chiral propagation and phase-induced interference affect spontaneous emission, bound-state [...] Read more.
In this paper we investigate the non-Markovian dynamics of a giant atom coupled to a one-dimensional photonic lattice with synthetic gauge fields. By engineering a complex-valued hopping amplitude, we break reciprocity and explore how chiral propagation and phase-induced interference affect spontaneous emission, bound-state formation, and atom–field entanglement. The giant atom interacts with the lattice at multiple, spatially separated sites, leading to rich interference effects and decoherence-free subspaces. We derive an exact expression for the self-energy and perform real-time Schrödinger simulations in the single-excitation subspace, for the atomic population, von Neumann entropy, field localization, and asymmetry in emission. Our results show that the hopping phase ϕ governs not only the directionality of emitted photons but also the degree of atom–bath entanglement and photon localization. Remarkably, we observe robust bound states inside the photonic band and directional asymmetry, due to interference from spatially separated coupling points. These findings provide a basis for engineering non-reciprocal, robust, and entangled light–matter interactions in structured photonic systems. Full article
(This article belongs to the Special Issue Advanced Research in Quantum Optics)
Show Figures

Figure 1

28 pages, 1450 KiB  
Review
N00N State Generation by Floquet Engineering
by Yusef Maleki
Mathematics 2025, 13(10), 1667; https://doi.org/10.3390/math13101667 - 19 May 2025
Viewed by 697
Abstract
We review quantum architectures for engineering the N00N state, a bipartite maximally entangled state essential in quantum metrology. These schemes transform the initial state |N|0 into the N00N state, [...] Read more.
We review quantum architectures for engineering the N00N state, a bipartite maximally entangled state essential in quantum metrology. These schemes transform the initial state |N|0 into the N00N state, 12(|N|0+|0|N), where |N and |0 are Fock states with N and 0 excitations, respectively. We demonstrate that this state can be generated through superpositions of quantum light modes, hybrid light–matter interactions, or spin ensembles. Our approach also enables the creation of mesoscopic and macroscopic entangled states, including entangled coherent and squeezed states. Furthermore, we show that a broad class of maximally entangled states can be realized within this framework. Extensions to multi-mode state engineering are also explored. Full article
(This article belongs to the Section E: Applied Mathematics)
Show Figures

Figure 1

40 pages, 5798 KiB  
Review
Global Realism with Bipolar Strings: From Bell Test to Real-World Causal-Logical Quantum Gravity and Brain-Universe Similarity for Entangled Machine Thinking and Imagination
by Wen-Ran Zhang
Information 2024, 15(8), 456; https://doi.org/10.3390/info15080456 - 1 Aug 2024
Cited by 1 | Viewed by 4552
Abstract
Following Einstein’s prediction that “Physics constitutes a logical system of thought” and “Nature is the realization of the simplest conceivable mathematical ideas”, this topical review outlines a formal extension of local realism limited by the speed of light to [...] Read more.
Following Einstein’s prediction that “Physics constitutes a logical system of thought” and “Nature is the realization of the simplest conceivable mathematical ideas”, this topical review outlines a formal extension of local realism limited by the speed of light to global realism with bipolar strings (GRBS) that unifies the principle of locality with quantum nonlocality. The related literature is critically reviewed to justify GRBS which is shown as a necessary and inevitable consequence of the Bell test and an equilibrium-based axiomatization of physics and quantum information science for brain–universe similarity and human-level intelligence. With definable causality in regularity and mind–light–matter unity for quantum superposition/entanglement, bipolar universal modus ponens (BUMP) in GRBS makes quantum emergence and submergence of spacetime logically ubiquitous in both the physical and mental worlds—an unexpected but long-sought simplification of quantum gravity with complete background independence. It is shown that GRBS forms a basis for quantum intelligence (QI)—a spacetime transcendent, quantum–digital compatible, analytical quantum computing paradigm where bipolar strings lead to bipolar entropy as a nonlinear bipolar dynamic and set–theoretic unification of order and disorder as well as linearity and nonlinearity for energy/information conservation, regeneration, and degeneration toward quantum cognition and quantum biology (QCQB) as well as information-conservational blackhole keypad compression and big bang data recovery. Subsequently, GRBS is justified as a real-world quantum gravity (RWQG) theory—a bipolar relativistic causal–logical reconceptualization and unification of string theory, loop quantum gravity, and M-theory—the three roads to quantum gravity. Based on GRBS, the following is posited: (1) life is a living bipolar superstring regulated by bipolar entropy; (2) thinking with consciousness and memory growth as a prerequisite for human-level intelligence is fundamentally mind–light–matter unitary QI logically equivalent to quantum emergence (entanglement) and submergence (collapse) of spacetime. These two posits lead to a positive answer to the question “If AI machine cannot think, can QI machine think?”. Causal–logical brain modeling (CLBM) for entangled machine thinking and imagination (EMTI) is proposed and graphically illustrated. The testability and falsifiability of GRBS are discussed. Full article
Show Figures

Figure 1

15 pages, 311 KiB  
Article
The Hidden Clash: Spacetime Outlook and Quantum-State Reductions
by Rafael Andrés Alemañ-Berenguer
Philosophies 2024, 9(3), 79; https://doi.org/10.3390/philosophies9030079 - 30 May 2024
Cited by 1 | Viewed by 3710
Abstract
It is generally assumed that compatibility with special relativity is guaranteed by the invariance of the fundamental equations of quantum physics under Lorentz transformations and the impossibility of transferring energy or information faster than the speed of light. Despite this, various contradictions persist, [...] Read more.
It is generally assumed that compatibility with special relativity is guaranteed by the invariance of the fundamental equations of quantum physics under Lorentz transformations and the impossibility of transferring energy or information faster than the speed of light. Despite this, various contradictions persist, which make us suspect the solidity of that compatibility. This paper focuses on collapse theories—although they are not the only way of interpreting quantum theory—in order to examine what seems to be insurmountable difficulties we encounter when trying to construct a space–time picture of such typically quantum processes as state vector reduction or the non-separability of entangled systems. The inescapable nature of such difficulties suggests the need to go further in the search for new formulations that surpass our current conceptions of matter and space–time. Full article
(This article belongs to the Special Issue Philosophy and Quantum Mechanics)
12 pages, 1435 KiB  
Article
Dynamics Reflects Quantum Phase Transition of Rabi Model
by Ming Li, Yinuo Wang, Zhaoyang Song, Yiming Zhao, Xiaolong Zhao and Hongyang Ma
Photonics 2023, 10(11), 1184; https://doi.org/10.3390/photonics10111184 - 24 Oct 2023
Viewed by 1928
Abstract
As the simplest and most fundamental model describing the interaction between light and matter, a breakdown in the rotating wave approximation of the Rabi model leads to phase transition versus coupling strength when the frequency of the qubit greatly surpasses that of the [...] Read more.
As the simplest and most fundamental model describing the interaction between light and matter, a breakdown in the rotating wave approximation of the Rabi model leads to phase transition versus coupling strength when the frequency of the qubit greatly surpasses that of the oscillator. In addition to the phase transition revealed in the ground state, we show that the dynamics of physical quantities can reflect such a phase transition for this model. In addition to the excitation of the bosonic field in the ground state, we show that the witness of inseparability (entanglement), mutual information, quantum Fisher information, and the variance of cavity quadrature can be employed to detect the phase transition in quench. We also reveal the negative impact of temperature on checking the phase transition by quench. This model can be implemented using trapped ions, superconducting artificial atoms coupled bosonic modes, and quantum simulations. By reflecting the phase transition in a fundamental quantum optics model without imposing the thermodynamic limit, this work offers an idea to explore phase transitions by nonequilibrium process for open quantums. Full article
(This article belongs to the Section Quantum Photonics and Technologies)
Show Figures

Figure 1

12 pages, 1911 KiB  
Proceeding Paper
Entangled Dual Universe
by Mohammed B. Al-Fadhli
Phys. Sci. Forum 2023, 7(1), 56; https://doi.org/10.3390/ECU2023-14102 - 2 Mar 2023
Viewed by 1618
Abstract
Advances in cosmology and astronomical observations have brought to light significant tensions and uncertainties within the current model of cosmology, which assumes a spatially flat Universe and is known as the ΛCDM model. Moreover, the Planck Legacy 2018 release has preferred that the [...] Read more.
Advances in cosmology and astronomical observations have brought to light significant tensions and uncertainties within the current model of cosmology, which assumes a spatially flat Universe and is known as the ΛCDM model. Moreover, the Planck Legacy 2018 release has preferred that the early Universe had a positive curvature with a confidence level more than 99%. This study reports a quantum mechanism that could potentially replace the concept of dark matter/energy by taking into the account the primordial curvature while generating the present-day spatial flatness. The approach incorporates the primordial curvature as the background curvature to extend the field equations into brane-world gravity. It utilizes a new wavefunction of the Universe that propagates in the bulk with respect to the scale factor and curvature radius of the early Universe upon the emission of the cosmic microwave background. The resulting wavefunction yields both positive and negative solutions, revealing the presence of a pair of entangled wavefunctions as a manifestation of the creation of matter and antimatter sides of the Universe. The wavefunction shows a nascent hyperbolic expansion away from early energy in opposite directions followed by a first decelerating expansion phase during the first ~10 Gyr and a subsequent accelerating expansion phase in reverse directions. During the second phase, both Universe sides are free-falling towards each other under gravitational acceleration. The simulation of the predicted background curvature evolution shows that the early curved background caused galaxies to experience external fields, resulting in the fast orbital speed of outer stars. Finally, the wavefunction predicts that the Universe will eventually undergo a rapid contraction phase resulting in a Big Crunch, which reveals a cyclic Universe. Full article
(This article belongs to the Proceedings of The 2nd Electronic Conference on Universe)
Show Figures

Figure 1

20 pages, 309 KiB  
Article
Quantum Gravity If Non-Locality Is Fundamental
by Stuart A. Kauffman
Entropy 2022, 24(4), 554; https://doi.org/10.3390/e24040554 - 15 Apr 2022
Cited by 10 | Viewed by 4024
Abstract
I take non-locality to be the Michelson–Morley experiment of the early 21st century, assume its universal validity, and try to derive its consequences. Spacetime, with its locality, cannot be fundamental, but must somehow be emergent from entangled coherent quantum variables and their behaviors. [...] Read more.
I take non-locality to be the Michelson–Morley experiment of the early 21st century, assume its universal validity, and try to derive its consequences. Spacetime, with its locality, cannot be fundamental, but must somehow be emergent from entangled coherent quantum variables and their behaviors. There are, then, two immediate consequences: (i). if we start with non-locality, we need not explain non-locality. We must instead explain an emergence of locality and spacetime. (ii). There can be no emergence of spacetime without matter. These propositions flatly contradict General Relativity, which is foundationally local, can be formulated without matter, and in which there is no “emergence” of spacetime. If these be true, then quantum gravity cannot be a minor alteration of General Relativity but must demand its deep reformulation. This will almost inevitably lead to: matter not only curves spacetime, but “creates” spacetime. We will see independent grounds for the assertion that matter both curves and creates spacetime that may invite a new union of quantum gravity and General Relativity. This quantum creation of spacetime consists of: (i) fully non-local entangled coherent quantum variables. (ii) The onset of locality via decoherence. (iii) A metric in Hilbert space among entangled quantum variables by the sub-additive von Neumann entropy between pairs of variables. (iv) Mapping from metric distances in Hilbert space to metric distances in classical spacetime by episodic actualization events. (v) Discrete spacetime is the relations among these discrete actualization events. (vi) “Now” is the shared moment of actualization of one among the entangled variables when the amplitudes of the remaining entangled variables change instantaneously. (vii) The discrete, successive, episodic, irreversible actualization events constitute a quantum arrow of time. (viii) The arrow of time history of these events is recorded in the very structure of the spacetime constructed. (ix) Actual Time is a succession of two or more actual events. The theory inevitably yields a UV cutoff of a new type. The cutoff is a phase transition between continuous spacetime before the transition and discontinuous spacetime beyond the phase transition. This quantum creation of spacetime modifies General Relativity and may account for Dark Energy, Dark Matter, and the possible elimination of the singularities of General Relativity. Relations to Causal Set Theory, faithful Lorentzian manifolds, and past and future light cones joined at “Actual Now” are discussed. Possible observational and experimental tests based on: (i). the existence of Sub- Planckian photons, (ii). knee and ankle discontinuities in the high-energy gamma ray spectrum, and (iii). possible experiments to detect a creation of spacetime in the Casimir system are discussed. A quantum actualization enhancement of repulsive Casimir effect would be anti-gravitational and of possible practical use. The ideas and concepts discussed here are not yet a theory, but at most the start of a framework that may be useful. Full article
4 pages, 168 KiB  
Proceeding Paper
The Second Quantum Revolution and Its Philosophical Meaning
by Hongfang Li
Proceedings 2022, 81(1), 71; https://doi.org/10.3390/proceedings2022081071 - 24 Mar 2022
Viewed by 2376
Abstract
The second quantum revolution blurs the distinction between information and matter. “It from (qu)bit or (Qu)bit from it” thus becomes a philosophical issue. According to the physicist Wen Xiaogang in MIT, quantum topological states of matter, formed by long-range entangled qubits, will show [...] Read more.
The second quantum revolution blurs the distinction between information and matter. “It from (qu)bit or (Qu)bit from it” thus becomes a philosophical issue. According to the physicist Wen Xiaogang in MIT, quantum topological states of matter, formed by long-range entangled qubits, will show all particles, such as light and electrons, are unified by the long-range entanglement of qubits. That is, it from qubit, not bit. Quantum information unifies matter, i.e., quantum information = quantum matter. This represents a new way to view our world. However, the information-theoretical paradigm, which origins from Wheeler’s “it from bit”, can lead to informational immaterialism and instrumentalism. In perspective of the constructive structural realism, there exists a constructive co-dependent structural relationship between quantum information and quantum matter. Both qubit and it are fundamental structural elements for us constructing our understanding of the physical world. Full article
10 pages, 479 KiB  
Article
Closed-System Solution of the 1D Atom from Collision Model
by Maria Maffei, Patrice A. Camati and Alexia Auffèves
Entropy 2022, 24(2), 151; https://doi.org/10.3390/e24020151 - 19 Jan 2022
Cited by 10 | Viewed by 2382
Abstract
Obtaining the total wavefunction evolution of interacting quantum systems provides access to important properties, such as entanglement, shedding light on fundamental aspects, e.g., quantum energetics and thermodynamics, and guiding towards possible application in the fields of quantum computation and communication. We consider a [...] Read more.
Obtaining the total wavefunction evolution of interacting quantum systems provides access to important properties, such as entanglement, shedding light on fundamental aspects, e.g., quantum energetics and thermodynamics, and guiding towards possible application in the fields of quantum computation and communication. We consider a two-level atom (qubit) coupled to the continuum of travelling modes of a field confined in a one-dimensional chiral waveguide. Originally, we treated the light-matter ensemble as a closed, isolated system. We solve its dynamics using a collision model where individual temporal modes of the field locally interact with the qubit in a sequential fashion. This approach allows us to obtain the total wavefunction of the qubit-field system, at any time, when the field starts in a coherent or a single-photon state. Our method is general and can be applied to other initial field states. Full article
(This article belongs to the Special Issue Quantum Collision Models)
Show Figures

Figure 1

14 pages, 849 KiB  
Perspective
Is Heralded Two-Photon Excited Fluorescence with Single Absorbers Possible with Current Technology?
by Andreas Jechow
Photonics 2022, 9(2), 52; https://doi.org/10.3390/photonics9020052 - 19 Jan 2022
Viewed by 3400
Abstract
The interaction between single or a fixed number of photons with a single absorber is of fundamental interest in quantum technology. The harnessing of light matter interactions at the single particle limit has several potential applications ranging from quantum communication and quantum metrology [...] Read more.
The interaction between single or a fixed number of photons with a single absorber is of fundamental interest in quantum technology. The harnessing of light matter interactions at the single particle limit has several potential applications ranging from quantum communication and quantum metrology to quantum imaging. In this perspective, a setup for heralded two-photon excited fluorescence at the single absorber level is proposed. The setup is based on a heralded two-photon source utilizing spontaneous parametric down-conversion, entanglement swapping and sum frequency generation for joint detection. This perspective aimed at triggering a discussion about the study of TPA and TPEF with only very few photons. The feasibility of the scheme is assessed by estimating the performance based on state-of-the-art technologies and losses, with the conclusion that the realization appears to be very challenging, but not completely impossible. Full article
(This article belongs to the Special Issue Quantum Photonics)
Show Figures

Figure 1

30 pages, 4381 KiB  
Review
Depolarization of Light in Optical Fibers: Effects of Diffraction and Spin-Orbit Interaction
by Nikolai I. Petrov
Fibers 2021, 9(6), 34; https://doi.org/10.3390/fib9060034 - 1 Jun 2021
Cited by 20 | Viewed by 6168
Abstract
Polarization is measured very often to study the interaction of light and matter, so the description of the polarization of light beams is of both practical and fundamental interest. This review discusses the polarization properties of structured light in multimode graded-index optical fibers, [...] Read more.
Polarization is measured very often to study the interaction of light and matter, so the description of the polarization of light beams is of both practical and fundamental interest. This review discusses the polarization properties of structured light in multimode graded-index optical fibers, with an emphasis on the recent advances in the area of spin-orbit interactions. The basic physical principles and properties of twisted light propagating in a graded index fiber are described: rotation of the polarization plane, Laguerre–Gauss vector beams with polarization-orbital angular momentum entanglement, splitting of degenerate modes due to spin-orbit interaction, depolarization of light beams, Berry phase and 2D and 3D degrees of polarizations, etc. Special attention is paid to analytical methods for solving the Maxwell equations of a three-component field using perturbation analysis and quantum mechanical approaches. Vector and tensor polarization degrees for the description of strongly focused light beams and their geometrical interpretation are also discussed. Full article
Show Figures

Graphical abstract

12 pages, 1288 KiB  
Article
Quantum Universe, Horizon, and Antimatter
by Alexey V. Melkikh
Symmetry 2021, 13(2), 337; https://doi.org/10.3390/sym13020337 - 19 Feb 2021
Viewed by 2225
Abstract
If the isolated system of bosons and fermions was initially in a pure maximally entangled quantum state, then, as a result of decoherence caused by the creation and annihilation of particles, this system not only enters a mixed state but also achieves equilibrium. [...] Read more.
If the isolated system of bosons and fermions was initially in a pure maximally entangled quantum state, then, as a result of decoherence caused by the creation and annihilation of particles, this system not only enters a mixed state but also achieves equilibrium. The time of such a transition does not depend on the size of the system but is determined only by the properties of the particles. This phenomenon allows the problem of the horizon (the homogeneity of the universe) to be solved, since the transition time of different parts of the universe (if they were originally entangled with each other) to equilibrium will not depend on their sizes, and the speed of the interaction may be greater than the speed of light. Based on the decay of entangled states, the problem of the predominance of matter over antimatter in the universe can also be solved. Full article
(This article belongs to the Section Physics)
Show Figures

Figure 1

27 pages, 10852 KiB  
Article
Growing Communities in a Garden Undone: Worldly Justice, Withinness and Women
by Simone Miranda Blom and Sarah Crinall
Genealogy 2020, 4(2), 42; https://doi.org/10.3390/genealogy4020042 - 31 Mar 2020
Cited by 2 | Viewed by 3026
Abstract
Where communities are ecological and humans are nature, ways of reimagining and regenerating communities as human and more, offer a timely response to the call of the Anthropocene for worldly justice. We, the authors, as women and mothers, look into time, place and [...] Read more.
Where communities are ecological and humans are nature, ways of reimagining and regenerating communities as human and more, offer a timely response to the call of the Anthropocene for worldly justice. We, the authors, as women and mothers, look into time, place and space, harvesting our ‘becoming (undone)’ for the reader, seeded in the botanical world. Creeping and whispering, still and subtle, plant species are ever present in our survival yet often go unnamed and unnoticed, and to date are under-represented in multi-species becoming research. Via Foucault’s shining light upon power, we muse with Barad, Haraway and Grosz—how does growing (with) plant-life, amongst what is ‘said’ and ‘unsaid’, matter (to) the world as it turns? We have been returned to the same sediment after a decade: Our bowed-together life revived in the childhood–motherhood–nature community entanglements of the Anthropocene. Now, this paper, waters plant–human relationalities living beyond the traditional parochial human-to-human role. We accept our humanness in its onerousness and ownership but look to the leaf litter to reacquaint with our multispecies lives in a garden that has, at times, been sacrificed and lost. Our contribution is chlorophyllic. New ideas enfold and energise what constitutes a community. As women woven with botanica and academia, where mothering is a collaboration rather than a raising, we invite the reader to journey with us into the worldly, life-giving relations that garden a community undone. Full article
(This article belongs to the Special Issue Reimagining ‘Childhood, Motherhood, Family and Community’)
15 pages, 1646 KiB  
Article
Interaction and Entanglement of a Pair of Quantum Emitters near a Nanoparticle: Analysis beyond Electric-Dipole Approximation
by Miriam Kosik and Karolina Słowik
Entropy 2020, 22(2), 135; https://doi.org/10.3390/e22020135 - 23 Jan 2020
Cited by 2 | Viewed by 3620
Abstract
In this paper, we study the collective effects which appear as a pair of quantum emitters is positioned in close vicinity to a plasmonic nanoparticle. These effects include multipole–multipole interaction and collective decay, the strengths and rates of which are modified by the [...] Read more.
In this paper, we study the collective effects which appear as a pair of quantum emitters is positioned in close vicinity to a plasmonic nanoparticle. These effects include multipole–multipole interaction and collective decay, the strengths and rates of which are modified by the presence of the nanoparticle. As a result, entanglement is generated between the quantum emitters, which survives in the stationary state. To evaluate these effects, we exploit the Green’s tensor-based quantization scheme in the Markovian limit, taking into account the corrections from light–matter coupling channels higher than the electric dipole. We find these higher-order channels to significantly influence the collective rates and degree of entanglement, and in particular, to qualitatively influence their spatial profiles. Our findings indicate that, apart from quantitatively modifying the results, the higher-order interaction channels may introduce asymmetry into the spatial distribution of the collective response. Full article
Show Figures

Figure 1

8 pages, 191 KiB  
Article
Urban Heritage as Ethos in Resource-Based Small-Scale Property Management
by Ingrid Martins Holmberg
Sustainability 2019, 11(19), 5354; https://doi.org/10.3390/su11195354 - 27 Sep 2019
Cited by 2 | Viewed by 2926
Abstract
This study puts urban heritage in the setting of property owners’ small-scale and resource-based management of ordinary old buildings. This phenomenon indicates a need not only to reconceptualize urban heritage in its actual complex web of negotiations over constraints of the regulation (urban [...] Read more.
This study puts urban heritage in the setting of property owners’ small-scale and resource-based management of ordinary old buildings. This phenomenon indicates a need not only to reconceptualize urban heritage in its actual complex web of negotiations over constraints of the regulation (urban planning, including preservation) and economy (the real estate market) but also to pay attention to the emergence of a new ethos. The case concerns a Swedish second-city context and the specific moment in time: When the 1990s recession had disarmed the real estate market. Based upon ethnographic fieldwork, this study used an assemblage perspective to allow for a following of entanglements of material and matter. The study sheds light upon the emergence of a small-scale and resource-based management in the midst of managerially defined cycles of investment. Important for the output was 1) the set-up of a network of skilled craftsmen, antiquarians, and entrepreneurs ‘of the right mindset that enabled for the authentic material result but that also helped navigate regulation and financial parties, 2) the “alternative market for reverential maintenance and repair” that guaranteed the appropriate supply of materials, products, and skills that differed from the mainstream construction market. For the means of understanding the ethos involved, the study introduced the notion of “factual life-span of buildings”. The overall aim of this article was to contribute to research on heritage urbanism by adding a resource management perspective that focusses on the entanglements of material and matter. Full article
(This article belongs to the Special Issue Heritage Urbanism—Urban Heritage and Planning and Design)
Back to TopTop