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Dive into the research topics where Alan C. Santos is active.

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Featured researches published by Alan C. Santos.


Scientific Reports | 2015

Superadiabatic Controlled Evolutions and Universal Quantum Computation.

Alan C. Santos; Marcelo S. Sarandy

Adiabatic state engineering is a powerful technique in quantum information and quantum control. However, its performance is limited by the adiabatic theorem of quantum mechanics. In this scenario, shortcuts to adiabaticity, such as provided by the superadiabatic theory, constitute a valuable tool to speed up the adiabatic quantum behavior. Here, we propose a superadiabatic route to implement universal quantum computation. Our method is based on the realization of piecewise controlled superadiabatic evolutions. Remarkably, they can be obtained by simple time-independent counter-diabatic Hamiltonians. In particular, we discuss the implementation of fast rotation gates and arbitrary n-qubit controlled gates, which can be used to design different sets of universal quantum gates. Concerning the energy cost of the superadiabatic implementation, we show that it is dictated by the quantum speed limit, providing an upper bound for the corresponding adiabatic counterparts.


Physical Review A | 2016

Shortcut to adiabatic gate teleportation

Alan C. Santos; Raphael Dias da Silva; Marcelo S. Sarandy

We introduce a shortcut to the adiabatic gate teleportation model of quantum computation. More specifically, we determine fast local counterdiabatic Hamiltonians able to implement teleportation as a universal computational primitive. In this scenario, we provide the counterdiabatic driving for arbitrary n-qubit gates, which allows to achieve universality through a variety of gate sets. Remarkably, our approach maps the superadiabatic Hamiltonian for an arbitrary n-qubit gate teleportation into the implementation of a rotated superadiabatic dynamics of an n-qubit state teleportation. This result is rather general, with the speed of the evolution only dictated by the quantum speed limit. In particular, we analyze the energetic cost for different Hamiltonian interpolations in the context of the energy-time complementarity.


Frontiers in ICT | 2016

Energetic Cost of Superadiabatic Quantum Computation

Ivan B. Coulamy; Alan C. Santos; Itay Hen; Marcelo S. Sarandy

We discuss the energetic cost of superadiabatic models of quantum computation. Specifically, we investigate the energy-time complementarity in general transitionless controlled evolutions and in shortcuts to the adiabatic quantum search over an unstructured list. We show that the additional energy resources required by superadiabaticity for arbitrary controlled evolutions can be minimized by using probabilistic dynamics, so that the optimal success probability is fixed by the choice of the evolution time. In the case of analog quantum search, we show that the superadiabatic approach induces a non-oracular counter-diabatic Hamiltonian, with the same energy-time complexity as equivalent adiabatic implementations.


Quantum Information Processing | 2018

Adiabatic quantum games and phase-transition-like behavior between optimal strategies

M. A. de Ponte; Alan C. Santos

In this paper we propose a game of a single qubit whose strategies can be implemented adiabatically. In addition, we show how to implement the strategies of a quantum game through controlled adiabatic evolutions, where we analyze the payment of a quantum player for various situations of interest: (1) when the players receive distinct payments, (2) when the initial state is an arbitrary superposition, and (3) when the device that implements the strategy is inefficient. Through a graphical analysis, it is possible to notice that the curves that represent the gains of the players present a behavior similar to the curves that give rise to a phase transition in thermodynamics. These transitions are associated with optimal strategy changes and occur in the absence of entanglement and interaction between the players.


Journal of Physics A | 2018

Generalized shortcuts to adiabaticity and enhanced robustness against decoherence

Alan C. Santos; Marcelo S. Sarandy

Shortcuts to adiabaticity provide a general approach to mimic adiabatic quantum processes via arbitrarily fast evolutions in Hilbert space. For these counter-diabatic evolutions, higher speed comes at higher energy cost. Here, the counter-diabatic theory is employed as a minimal energy demanding scheme for speeding up adiabatic tasks. As a by-product, we show that this approach can be used to obtain infinite classes of transitionless models, including time-independent Hamiltonians under certain conditions over the eigenstates of the original Hamiltonian. We apply these results to investigate shortcuts to adiabaticity in decohering environments by introducing the requirement of a fixed energy resource. In this scenario, we show that generalized transitionless evolutions can be more robust against decoherence than their adiabatic counterparts. We illustrate this enhanced robustness both for the Landau–Zener model and for quantum gate Hamiltonians.


arXiv: Quantum Physics | 2018

Quantum Information Processing via Hamiltonian Inverse Quantum Engineering

Alan C. Santos

In this paper we discuss how we can design Hamiltonians to implement quantum algorithms, in particular we focus in Deutsch and Grover algorithms. As main result of this paper, we show how Hamiltonian inverse quantum engineering method allow us to obtain feasible and time-independent Hamiltonians for implementing such algorithms. From our approach for the Deutsch algorithm, different from others techniques, we can provide an alternative approach for implementing such algorithm where no auxiliary qubit and additional resources are required. In addition, by using a single quantum evolution, the Grover algorithm can be achieved with high probability


Revista Brasileira De Ensino De Fisica | 2016

O Computador Quântico da IBM e o IBM Quantum Experience

Alan C. Santos

1-\epsilon^2


arXiv: Quantum Physics | 2018

Validation of Quantum Adiabaticity through Non-Inertial Frames and Its Trapped-Ion Realization.

Chang-Kang Hu; Jin-Ming Cui; Alan C. Santos; Yun-Feng Huang; Chuan-Feng Li; Guang-Can Guo; Frederico Brito; Marcelo S. Sarandy

, where


arXiv: Quantum Physics | 2018

Minimal resource to design spin-based quantum transistors

Alan C. Santos

\epsilon


arXiv: Quantum Physics | 2018

Coupled-oscillators-based quantum transistors

Alan C. Santos

is a very small arbitrary parameter.

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Chang-Kang Hu

University of Science and Technology of China

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Chuan-Feng Li

University of Science and Technology of China

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Guang-Can Guo

University of Science and Technology of China

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Jin-Ming Cui

University of Science and Technology of China

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Yun-Feng Huang

University of Science and Technology of China

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Ivan B. Coulamy

Federal Fluminense University

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