10 research outputs found
A one-sided refined symmetrized data aggregation approach to robust mutual fund selection
We consider the problem of identifying skilled funds among a large number of candidates under the linear factor pricing models containing both observable and latent market factors. Motivated by the existence of non-strong potential factors and diversity of error distribution types of the linear factor pricing models, we develop a distribution-free multiple testing procedure to solve this problem. The proposed procedure is established based on the statistical tool of symmetrized data aggregation, which makes it robust to the strength of potential factors and distribution type of the error terms. We then establish the asymptotic validity of the proposed procedure in terms of both the false discovery rate and true discovery proportion under some mild regularity conditions. Furthermore, we demonstrate the advantages of the proposed procedure over some existing methods through extensive Monte Carlo experiments. In an empirical application, we illustrate the practical utility of the proposed procedure in the context of selecting skilled funds, which clearly has much more satisfactory performance than its main competitors.</p
Light-Reconfiguring Inhomogeneous Soft Helical Pitch with Fatigue Resistance and Reversibility
Active engineering and modulation of optical spectra
in a remote
and fully reversible light is urgently desired in photonics, chemistry,
and materials. However, the real-time regulation of multiple optical
information such as wavelength, bandwidth, reflectance, and polarization
is still a longstanding issue due to the lack of an appropriate photoresponsive
candidate. Herein, we propose an additional “degree-of-freedom
(DOF)” in a photo-modulated soft helix, and build up an unprecedented
inhomogeneous helical pitch length with light-reconfiguring property,
fatigue resistance, and reversibility. For the working model, the
intrinsic chiral photoswitch LBC5 is employed as an actuator
to modulate the helical pitch length, which is proportional to the
irradiation intensity, and the unique broadband absorbance photo-modulator BTA-C5 is incorporated as an attenuator of the transmitted
light to decrease its intensity along the sample thickness, therefore
successfully adding another controlled DOF on the pitch length distribution
(i.e., homogeneous or inhomogeneous) apart from the common soft helix
with only a single DOF on the pitch length. The absorbance photo-modulator BTA-C5 with a unique variable broadband absorption enables
the light to reconfigure the helical pitch from homogeneous to inhomogeneous,
thereby achieving the robust fatigue-resistance establishment of reversible
spectral programming. The established light-reconfigurable inhomogeneous
helical pitch with the photoresponsive modulator BTA-C5 can provide a breakthrough to control absorbance and chirality,
especially for dynamically broadening and narrowing the bandwidth
on demand, and further enable the ever-desired broadband NIR circularly
polarized luminescence (CPL) with a high dissymmetry factor glum of up to 1.88. The cutting-edge photoswitchable
inhomogeneous soft helical pitch provides access to multi-freedom
control in soft materials, optics, biophotonics, and other relevant
fields
Light-Reconfiguring Inhomogeneous Soft Helical Pitch with Fatigue Resistance and Reversibility
Active engineering and modulation of optical spectra
in a remote
and fully reversible light is urgently desired in photonics, chemistry,
and materials. However, the real-time regulation of multiple optical
information such as wavelength, bandwidth, reflectance, and polarization
is still a longstanding issue due to the lack of an appropriate photoresponsive
candidate. Herein, we propose an additional “degree-of-freedom
(DOF)” in a photo-modulated soft helix, and build up an unprecedented
inhomogeneous helical pitch length with light-reconfiguring property,
fatigue resistance, and reversibility. For the working model, the
intrinsic chiral photoswitch LBC5 is employed as an actuator
to modulate the helical pitch length, which is proportional to the
irradiation intensity, and the unique broadband absorbance photo-modulator BTA-C5 is incorporated as an attenuator of the transmitted
light to decrease its intensity along the sample thickness, therefore
successfully adding another controlled DOF on the pitch length distribution
(i.e., homogeneous or inhomogeneous) apart from the common soft helix
with only a single DOF on the pitch length. The absorbance photo-modulator BTA-C5 with a unique variable broadband absorption enables
the light to reconfigure the helical pitch from homogeneous to inhomogeneous,
thereby achieving the robust fatigue-resistance establishment of reversible
spectral programming. The established light-reconfigurable inhomogeneous
helical pitch with the photoresponsive modulator BTA-C5 can provide a breakthrough to control absorbance and chirality,
especially for dynamically broadening and narrowing the bandwidth
on demand, and further enable the ever-desired broadband NIR circularly
polarized luminescence (CPL) with a high dissymmetry factor glum of up to 1.88. The cutting-edge photoswitchable
inhomogeneous soft helical pitch provides access to multi-freedom
control in soft materials, optics, biophotonics, and other relevant
fields
Light-Reconfiguring Inhomogeneous Soft Helical Pitch with Fatigue Resistance and Reversibility
Active engineering and modulation of optical spectra
in a remote
and fully reversible light is urgently desired in photonics, chemistry,
and materials. However, the real-time regulation of multiple optical
information such as wavelength, bandwidth, reflectance, and polarization
is still a longstanding issue due to the lack of an appropriate photoresponsive
candidate. Herein, we propose an additional “degree-of-freedom
(DOF)” in a photo-modulated soft helix, and build up an unprecedented
inhomogeneous helical pitch length with light-reconfiguring property,
fatigue resistance, and reversibility. For the working model, the
intrinsic chiral photoswitch LBC5 is employed as an actuator
to modulate the helical pitch length, which is proportional to the
irradiation intensity, and the unique broadband absorbance photo-modulator BTA-C5 is incorporated as an attenuator of the transmitted
light to decrease its intensity along the sample thickness, therefore
successfully adding another controlled DOF on the pitch length distribution
(i.e., homogeneous or inhomogeneous) apart from the common soft helix
with only a single DOF on the pitch length. The absorbance photo-modulator BTA-C5 with a unique variable broadband absorption enables
the light to reconfigure the helical pitch from homogeneous to inhomogeneous,
thereby achieving the robust fatigue-resistance establishment of reversible
spectral programming. The established light-reconfigurable inhomogeneous
helical pitch with the photoresponsive modulator BTA-C5 can provide a breakthrough to control absorbance and chirality,
especially for dynamically broadening and narrowing the bandwidth
on demand, and further enable the ever-desired broadband NIR circularly
polarized luminescence (CPL) with a high dissymmetry factor glum of up to 1.88. The cutting-edge photoswitchable
inhomogeneous soft helical pitch provides access to multi-freedom
control in soft materials, optics, biophotonics, and other relevant
fields
Distribution of mutation frequency in the PreC/C region.
<p>The square indicates the mutations associated with HBV-HCC survival by univariate analysis using the log-rank test, and the rhombus indicates mutations that were not associated with HBV-HCC.</p
Light-Reconfiguring Inhomogeneous Soft Helical Pitch with Fatigue Resistance and Reversibility
Active engineering and modulation of optical spectra
in a remote
and fully reversible light is urgently desired in photonics, chemistry,
and materials. However, the real-time regulation of multiple optical
information such as wavelength, bandwidth, reflectance, and polarization
is still a longstanding issue due to the lack of an appropriate photoresponsive
candidate. Herein, we propose an additional “degree-of-freedom
(DOF)” in a photo-modulated soft helix, and build up an unprecedented
inhomogeneous helical pitch length with light-reconfiguring property,
fatigue resistance, and reversibility. For the working model, the
intrinsic chiral photoswitch LBC5 is employed as an actuator
to modulate the helical pitch length, which is proportional to the
irradiation intensity, and the unique broadband absorbance photo-modulator BTA-C5 is incorporated as an attenuator of the transmitted
light to decrease its intensity along the sample thickness, therefore
successfully adding another controlled DOF on the pitch length distribution
(i.e., homogeneous or inhomogeneous) apart from the common soft helix
with only a single DOF on the pitch length. The absorbance photo-modulator BTA-C5 with a unique variable broadband absorption enables
the light to reconfigure the helical pitch from homogeneous to inhomogeneous,
thereby achieving the robust fatigue-resistance establishment of reversible
spectral programming. The established light-reconfigurable inhomogeneous
helical pitch with the photoresponsive modulator BTA-C5 can provide a breakthrough to control absorbance and chirality,
especially for dynamically broadening and narrowing the bandwidth
on demand, and further enable the ever-desired broadband NIR circularly
polarized luminescence (CPL) with a high dissymmetry factor glum of up to 1.88. The cutting-edge photoswitchable
inhomogeneous soft helical pitch provides access to multi-freedom
control in soft materials, optics, biophotonics, and other relevant
fields
Primer pairs used in amplifying and sequencing the precore/core regions.
<p>Primer pairs used in amplifying and sequencing the precore/core regions.</p
Light-Reconfiguring Inhomogeneous Soft Helical Pitch with Fatigue Resistance and Reversibility
Active engineering and modulation of optical spectra
in a remote
and fully reversible light is urgently desired in photonics, chemistry,
and materials. However, the real-time regulation of multiple optical
information such as wavelength, bandwidth, reflectance, and polarization
is still a longstanding issue due to the lack of an appropriate photoresponsive
candidate. Herein, we propose an additional “degree-of-freedom
(DOF)” in a photo-modulated soft helix, and build up an unprecedented
inhomogeneous helical pitch length with light-reconfiguring property,
fatigue resistance, and reversibility. For the working model, the
intrinsic chiral photoswitch LBC5 is employed as an actuator
to modulate the helical pitch length, which is proportional to the
irradiation intensity, and the unique broadband absorbance photo-modulator BTA-C5 is incorporated as an attenuator of the transmitted
light to decrease its intensity along the sample thickness, therefore
successfully adding another controlled DOF on the pitch length distribution
(i.e., homogeneous or inhomogeneous) apart from the common soft helix
with only a single DOF on the pitch length. The absorbance photo-modulator BTA-C5 with a unique variable broadband absorption enables
the light to reconfigure the helical pitch from homogeneous to inhomogeneous,
thereby achieving the robust fatigue-resistance establishment of reversible
spectral programming. The established light-reconfigurable inhomogeneous
helical pitch with the photoresponsive modulator BTA-C5 can provide a breakthrough to control absorbance and chirality,
especially for dynamically broadening and narrowing the bandwidth
on demand, and further enable the ever-desired broadband NIR circularly
polarized luminescence (CPL) with a high dissymmetry factor glum of up to 1.88. The cutting-edge photoswitchable
inhomogeneous soft helical pitch provides access to multi-freedom
control in soft materials, optics, biophotonics, and other relevant
fields
Light-Reconfiguring Inhomogeneous Soft Helical Pitch with Fatigue Resistance and Reversibility
Active engineering and modulation of optical spectra
in a remote
and fully reversible light is urgently desired in photonics, chemistry,
and materials. However, the real-time regulation of multiple optical
information such as wavelength, bandwidth, reflectance, and polarization
is still a longstanding issue due to the lack of an appropriate photoresponsive
candidate. Herein, we propose an additional “degree-of-freedom
(DOF)” in a photo-modulated soft helix, and build up an unprecedented
inhomogeneous helical pitch length with light-reconfiguring property,
fatigue resistance, and reversibility. For the working model, the
intrinsic chiral photoswitch LBC5 is employed as an actuator
to modulate the helical pitch length, which is proportional to the
irradiation intensity, and the unique broadband absorbance photo-modulator BTA-C5 is incorporated as an attenuator of the transmitted
light to decrease its intensity along the sample thickness, therefore
successfully adding another controlled DOF on the pitch length distribution
(i.e., homogeneous or inhomogeneous) apart from the common soft helix
with only a single DOF on the pitch length. The absorbance photo-modulator BTA-C5 with a unique variable broadband absorption enables
the light to reconfigure the helical pitch from homogeneous to inhomogeneous,
thereby achieving the robust fatigue-resistance establishment of reversible
spectral programming. The established light-reconfigurable inhomogeneous
helical pitch with the photoresponsive modulator BTA-C5 can provide a breakthrough to control absorbance and chirality,
especially for dynamically broadening and narrowing the bandwidth
on demand, and further enable the ever-desired broadband NIR circularly
polarized luminescence (CPL) with a high dissymmetry factor glum of up to 1.88. The cutting-edge photoswitchable
inhomogeneous soft helical pitch provides access to multi-freedom
control in soft materials, optics, biophotonics, and other relevant
fields
Synergistic Utilization of a CeO<sub>2</sub>‑Anchored Bifunctionalized Metal–Organic Framework in a Polymer Nanocomposite toward Achieving High Power Density and Durability of PEMFC
The free radicals produced during
the long-term operation of fuel
cells can accelerate the chemical degradation of the proton exchange
membrane (PEM). In the present work, the widely used free radical
scavenger CeO2 was anchored on amino-functionalized metal–organic
frameworks, and flexible alkyl sulfonic acid side chains were tethered
onto the surface of inorganic nanoparticles. The prepared CeO2-anchored bifunctionalized metal–organic framework
(CeO2-MNCS) was used as a promising synergistic filler
to modify the Nafion matrix for addressing the detrimental effect
of pristine CeO2 on the performance and durability of PEMs,
including decreased proton conductivity and the migration problem
of CeO2. The obtained hybrid membranes exhibited a high
proton conductivity up to 0.239 S cm–1, enabling
them to achieve a high power density of 591.47 mW cm–2 in a H2/air PEMFC single cell, almost 1.59 times higher
than that of recast Nafion. After 115 h of acceleration testing, the
OCV decay ratio of the hybrid membrane was decreased to 0.54 mV h–1, which was significantly lower than that of recast
Nafion (2.18 mV h–1). The hybrid membrane still
maintained high power density, low hydrogen crossover, and unabated
catalytic activity of the catalyst layer after the durability test.
This study provides an effective one-stone-two-birds strategy to develop
highly durable PEMs by immobilizing CeO2 without sacrificing
proton conductivity, allowing for the realization of improvement on
the performance and sustained durability of PEMFC simultaneously