Superconducting quantum computingSuperconducting quantum computing is a branch of solid state quantum computing that implements superconducting electronic circuits using superconducting qubits as artificial atoms, or quantum dots. For superconducting qubits, the two logic states are the ground state and the excited state, denoted respectively. Research in superconducting quantum computing is conducted by companies such as Google, IBM, IMEC, BBN Technologies, Rigetti, and Intel. Many recently developed QPUs (quantum processing units, or quantum chips) utilize superconducting architecture.
Informatique quantiqueL'informatique quantique est le sous-domaine de l'informatique qui traite des calculateurs quantiques et des associés. La notion s'oppose à celle d'informatique dite « classique » n'utilisant que des phénomènes de physique classique, notamment de l'électricité (exemple du transistor) ou de mécanique classique (exemple historique de la machine analytique). En effet, l'informatique quantique utilise également des phénomènes de la mécanique quantique, à savoir l'intrication quantique et la superposition.
Flux qubitIn quantum computing, more specifically in superconducting quantum computing, flux qubits (also known as persistent current qubits) are micrometer sized loops of superconducting metal that is interrupted by a number of Josephson junctions. These devices function as quantum bits. The flux qubit was first proposed by Terry P. Orlando et al. at MIT in 1999 and fabricated shortly thereafter. During fabrication, the Josephson junction parameters are engineered so that a persistent current will flow continuously when an external magnetic flux is applied.
Quantum information scienceQuantum information science is a field that combines the principles of quantum mechanics with information science to study the processing, analysis, and transmission of information. It covers both theoretical and experimental aspects of quantum physics, including the limits of what can be achieved with quantum information. The term quantum information theory is sometimes used, but it does not include experimental research and can be confused with a subfield of quantum information science that deals with the processing of quantum information.
Information quantiqueLa théorie de l'information quantique, parfois abrégée simplement en information quantique, est un développement de la théorie de l'information de Claude Shannon exploitant les propriétés de la mécanique quantique, notamment le principe de superposition ou encore l'intrication. L'unité qui est utilisée pour quantifier l'information quantique est le qubit, par analogie avec le bit d'information classique.
Décohérence quantiqueLa décohérence quantique est une théorie susceptible d'expliquer la transition entre les règles physiques quantiques et les règles physiques classiques telles que nous les connaissons, à un niveau macroscopique. Plus spécifiquement, cette théorie apporte une réponse, considérée comme étant la plus complète à ce jour, au paradoxe du chat de Schrödinger et au problème de la mesure quantique. La théorie de la décohérence a été introduite par H. Dieter Zeh en 1970. Elle a reçu ses premières confirmations expérimentales en 1996.
Porte quantiqueEn informatique quantique, et plus précisément dans le modèle de de calcul, une porte quantique (ou porte logique quantique) est un circuit quantique élémentaire opérant sur un petit nombre de qubits. Les portes quantiques sont les briques de base des circuits quantiques, comme le sont les portes logiques classiques pour des circuits numériques classiques. Contrairement à de nombreuses portes logiques classiques, les portes logiques quantique sont « réversibles ».
Quantum networkQuantum networks form an important element of quantum computing and quantum communication systems. Quantum networks facilitate the transmission of information in the form of quantum bits, also called qubits, between physically separated quantum processors. A quantum processor is a small quantum computer being able to perform quantum logic gates on a certain number of qubits. Quantum networks work in a similar way to classical networks. The main difference is that quantum networking, like quantum computing, is better at solving certain problems, such as modeling quantum systems.
Tunable metamaterialA tunable metamaterial is a metamaterial with a variable response to an incident electromagnetic wave. This includes remotely controlling how an incident electromagnetic wave (EM wave) interacts with a metamaterial. This translates into the capability to determine whether the EM wave is transmitted, reflected, or absorbed. In general, the lattice structure of the tunable metamaterial is adjustable in real time, making it possible to reconfigure a metamaterial device during operation.
Metamaterial antennaMetamaterial antennas are a class of antennas which use metamaterials to increase performance of miniaturized (electrically small) antenna systems. Their purpose, as with any electromagnetic antenna, is to launch energy into free space. However, this class of antenna incorporates metamaterials, which are materials engineered with novel, often microscopic, structures to produce unusual physical properties. Antenna designs incorporating metamaterials can step-up the antenna's radiated power.