1,618 research outputs found
Technical-Environmental-Economical Evaluation of the Implementation of a Highly Efficient District Heating System in China
Method for achieving hydraulic balance in typical Chinese building heating systems by managing differential pressure and flow
Atomic-scale control of magnetic anisotropy via novel spin-orbit coupling effect in La2/3Sr1/3MnO3/SrIrO3 superlattices
Magnetic anisotropy (MA) is one of the most important material properties for
modern spintronic devices. Conventional manipulation of the intrinsic MA, i.e.
magnetocrystalline anisotropy (MCA), typically depends upon crystal symmetry.
Extrinsic control over the MA is usually achieved by introducing shape
anisotropy or exchange bias from another magnetically ordered material. Here we
demonstrate a pathway to manipulate MA of 3d transition metal oxides (TMOs) by
digitally inserting non-magnetic 5d TMOs with pronounced spin-orbit coupling
(SOC). High quality superlattices comprised of ferromagnetic La2/3Sr1/3MnO3
(LSMO) and paramagnetic SrIrO3 (SIO) are synthesized with the precise control
of thickness at atomic scale. Magnetic easy axis reorientation is observed by
controlling the dimensionality of SIO, mediated through the emergence of a
novel spin-orbit state within the nominally paramagnetic SIO.Comment: Proceedings of the National Academy of Sciences, May 201
Movable Antennas for Wireless Communication: Opportunities and Challenges
Movable antenna (MA) technology is a recent development that fully exploits
the wireless channel spatial variation in a confined region by enabling local
movement of the antenna. Specifically, the positions of antennas at the
transmitter and/or receiver can be dynamically changed to obtain better channel
conditions for improving the communication performance. In this article, we
first provide an overview of the promising applications for MA-aided wireless
communication. Then, we present the hardware architecture and channel
characterization for MA systems, based on which the variation of the channel
gain with respect to the MA's position is illustrated. Furthermore, we analyze
the performance advantages of MAs over conventional fixed-position antennas, in
terms of signal power improvement, interference mitigation, flexible
beamforming, and spatial multiplexing. Finally, we discuss the main design
challenges and their potential solutions for MA-aided communication systems
Movable-Antenna Array Enhanced Beamforming: Achieving Full Array Gain with Null Steering
Conventional beamforming with fixed-position antenna (FPA) arrays has a
fundamental trade-off between maximizing the signal power (array gain) over a
desired direction and simultaneously minimizing the interference power over
undesired directions. To overcome this limitation, this letter investigates the
movable antenna (MA) array enhanced beamforming by exploiting the new degree of
freedom (DoF) via antenna position optimization, in addition to the design of
antenna weights. We show that by jointly optimizing the antenna positions
vector (APV) and antenna weights vector (AWV) of a linear MA array, the full
array gain can be achieved over the desired direction while null steering can
be realized over all undesired directions, under certain numbers of MAs and
null-steering directions. The optimal solutions for AWV and APV are derived in
closed form, which reveal that the optimal AWV for MA arrays requires only the
signal phase adjustment with a fixed amplitude. Numerical results validate our
analytical solutions for MA array beamforming and show their superior
performance to the conventional beamforming techniques with FPA arrays.Comment: Submitted to IEEE Communications Letter
Passive Reflection Codebook Design for IRS-Integrated Access Point
Intelligent reflecting surface (IRS) has emerged as a promising technique to
extend the wireless signal coverage of access point (AP) and improve the
communication performance cost-effectively. In order to reduce the path-loss of
the cascaded user-IRS-AP channels, the IRS-integrated AP architecture has been
proposed to deploy the IRSs and the antenna array of the AP within the same
antenna radome. To reduce the pilot overhead for estimating all IRS-involved
channels, in this paper, we propose a novel codebook-based IRS reflection
design for the IRS-integrated AP to enhance the coverage performance in a given
area. In particular, the codebook consisting of a small number of codewords is
designed offline by employing an efficient sector division strategy based on
the azimuth angle. To ensure the performance of each sector, we optimize its
corresponding codeword for IRS reflection pattern to maximize the
sector-min-average-effective-channel-power (SMAECP) by applying the alternating
optimization (AO) and semidefinite relaxation (SDR) methods. With the designed
codebook, the AP performs the IRS reflection training by sequentially applying
all codewords and selects the one achieving the best communication performance
for data transmission. Numerical results show that our proposed codebook design
can enhance the average channel power of the whole coverage area, as compared
to the system without IRS. Moreover, our proposed codebook-based IRS reflection
design is shown to achieve significant performance gain over other benchmark
schemes in both single-user and multi-user transmissions.Comment: 13 pages, 11 figure
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