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Fig 2. Most abundant bacteria families identified in the microbiome. (A) Most common families from enzootic pneumonic lungs (M01) group. (B) Most common families from carrier lungs (M02) group. The x- axes shows the most prevalent families matched in the samples. The y-axes show the abundance of reads from each of the ...
The figure contains two side-by-side bar charts (panels A and B) showing read abundance per bacterial family on a logarithmic y-axis (tick labels visible at 1, 10, 100, 1,000, 10,000, 100,000 and 1,000,000) with the y-axis labeled "Abundance (Reads)" and the x-axis labeled "Bacterial families"; each panel displays 14 i...
This image presents two bar charts, labeled A) and B), illustrating the abundance of bacterial families, quantified in "Reads" on a logarithmic y-axis ranging from 1 to 1,000,000. The x-axis of both charts is labeled "Bacterial families". In chart A), the most abundant family is Mycoplasmataceae, with approximately 700...
Figure 4. Double layer force-distance curves at ns-TiO2 surfaces with corrected distance axis. (A) Average force curves at pH,5.4 and [NaCl] = 1 mM between the colloidal borosilicate glass probe and ns-TiO2 films with different roughness with corrected distance axis (i.e. positively shifted by Rq, see main text for det...
Panel A is a multi‑series force–distance plot (y-axis: "Force (nN)", range ≈ −0.05 to 0.32 nN) versus a corrected distance axis labeled "D + R_q (nm)" (x-axis spanning ≈ 10–100 nm). Ten distinct data series, each plotted with different colored markers and small vertical error bars and labeled in the legend by root‑mean...
The image presents two distinct graphs, labeled A and B. Graph A displays multiple force-distance curves, plotting Force in nanoNewtons (nN) on the y-axis (ranging from -0.05 to 0.3 nN) against D + R_q in nanometers (nm) on the x-axis (ranging from approximately 10 to 100 nm). There are nine datasets, each represented ...
Figure 1. Schematic of synthesis procedure of s@LLAZO-PEGDA CSE with percolated s@LLAZO network within the composite electrolyte, providing fast and non-tortuous Li+ conductive pathways.
Composite schematic figure combining a chemical reaction scheme (top), a molecular structure diagram (top right), macroscopic device depiction (middle left), and microstructural renderings (bottom center and right) that illustrate the architecture of an s@LLAZO‑PEGDA composite solid electrolyte. Top left: a stylized s@...
This image is a multi-panel schematic diagram illustrating the synthesis, structure, and function of a composite solid electrolyte. The top left panel depicts a synthesis reaction, showing s@LLAZO nanofiber (containing an -O-Si- linkage, a carbonyl group, and a CH2=CH-CH3 structure) and PEGDA (with two vinyl end groups...
Figure 2. TEM images of (a) LLAZO, (b) s@LLAZO(3h), (c) s@LLAZO(6h), (d) s@LLAZO(12h), and (e) s@LLAZO(24h) nanofibers, (f) XPS spectra (C 1s, O 1s, Li 1s, Si 2p) of LLAZO and s@LLAZO(6h) nanofibers, (g) Arrhenius plots of LLAZO-30PEGDA and s@LLAZO-30PEGDA CSEs, (h) Ionic conductivities of s@SiO2(6h)-PEGDA, s@TiO2(6h)-...
Composite figure containing TEM (a–e), XPS spectra (f), an Arrhenius plot (g), a filler-content vs ionic conductivity plot (h), and stress–strain curves (i). Top row (a–e): five high-resolution TEM images of single nanofibers showing a darker crystalline core and a lighter contrast surface layer in some panels; each TE...
The figure presents a multi-panel analysis combining microscopic imaging, spectroscopic data, and electrochemical and mechanical characterization. Panels (a) through (e) display Transmission Electron Microscopy (TEM) images, each with a 5 nm scale bar, showing different material morphologies: (a) exhibits a granular, l...
Figure 3. (a) Digital image of s@LLAZO(6h)-50PEGDA CSE, (b) Linear sweep voltammetry curves of PEGDA, LLAZO-90PEGDA, and s@LLAZO(6h)-50PEGDA CSEs, (c) DC polarization curves, and (d) lithium plating/striping cycles of symmetric Li|s@LLAZO(6h)- 50PEGDA|Li cell.
Composite four-panel figure showing (a) a digital photograph and three electrochemical characterization plots. (a) Photograph: a thin, pale flexible membrane is pinched and bent by metal tweezers above a background printed with four circular university seals; the membrane is curled without visible cracking. (b) Linear ...
The figure comprises four panels detailing material characteristics and electrochemical performance. Panel (a) is a digital photograph showing a translucent, off-white flexible film being held by tweezers, appearing to bend without cracking, above four circular seals with the text "NORTH CAROLINA STATE UNIVERSITY". Pan...
Figure 4. (a) EIS profiles and (b) cycling performance (at 0.5C) of all-solid-state Li|s@LLAZO(6h)-PEGDA|LiFePO4 cells with different concentration of s@LLAZO nanofibers, (c) cycling performance (at 1C) and (d) rate capability (0.2-10 C) of all-solid-state Li|s@LLAZO(6h)-50PEGDA|LiFePO4 cell operated at 25 °C, (e) cycl...
The figure is a multipanel electrochemical data summary comprising six plots: (a) Nyquist (EIS) Nyquist plot of -Z'' (Ω cm^2) versus Z' (Ω cm^2) with the x-axis from 0 to 800 Ω cm^2 and the y-axis from 0 to 400 Ω cm^2; three impedance traces are shown and identified in the legend as red circles, blue squares and green ...
The image presents a multi-panel analysis of electrochemical cell performance at 25 °C. Panel (a) displays Nyquist plots, showing -Z'' (Ω cm²) on the y-axis (0 to 400) versus Z' (Ω cm²) on the x-axis (0 to 800). Three curves are plotted: s@LLAZO(6h)-70PEGDA (red circles), s@LLAZO(6h)-50PEGDA (blue squares), and s@LLAZO...
Figure 2. DLSμR workflow. The polymer solution or gel precursor is mixed with a dilute concentration of tracer particles (<0.5% w/v). DLS is performed in a backscattering configuration using a commercial benchtop instrument. Brownian motion of the tracer particles produces fluctuations in scattering intensity that give ri...
Schematic workflow diagram (cartoon) showing dynamic light scattering (DLS)–based microrheology: left panel titled "Mix tracer particles" depicts two beakers—one labeled "Tracer particles (< 0.5% w/v)" and one labeled "Polymer solution or gel precursor"—being combined into a low-volume rectangular cuvette captioned "Lo...
This image is a scientific workflow diagram illustrating a multi-step process. The first step, "Mix tracer particles," shows two containers, one with "Tracer particles (<0.5% w/v)" and another with "Polymer solution or gel precursor," which are mixed and then placed into a "Low volume (12 µL) cuvette." The second step,...
Figure 3. DLSμR recapitulates macrorheology in cross-linked polyacrylamide gels with shear moduli G* spanning 101 to 104 Pa. Top: Comparison of the frequency ω dependence of the magnitude of the shear modulus |G*| obtained by DLSμR and macrorheology of polyacrylamide gels with varying polacrylamide concentrations (% w/...
The figure is a composite of a log–log viscoelastic modulus plot (top) and four square displacement maps with overlaid particle trajectories (bottom). The top panel plots the magnitude of the complex shear modulus |G*| (Pa) on the y‑axis (log scale, tick marks 10^0 to 10^5) versus angular frequency ω (s^−1) on the x‑ax...
The figure displays a multi-panel scientific visualization, combining a rheological plot with particle displacement trajectories. The top panel is a log-log plot showing the magnitude of the complex shear modulus, |G*| (Pa), on the y-axis, plotted against angular frequency, ω (s⁻¹), on the x-axis. The y-axis ranges fro...
Figure 4. DLSμR of DNA solutions reveals a hierarchy of molecular relaxations. Top: Shear modulus G* as a function of angular frequency ω of semidilute DNA solutions. Regions A, B, and C represent approximate regimes in which the viscoelastic response is expected to probe the total chain relaxation, internal flexible ch...
Composite figure consisting of a log–log rheology plot (top) and schematic illustrations (middle and bottom). Top panel: y-axis labeled "G* - inω (Pa)" with logarithmic ticks from 10^-2 to 10^4; x-axis labeled "ω (s^-1)" with ticks from 10^0 to 10^6. Two data series are shown as red filled circles (legend label "G′") a...
This multi-panel scientific figure presents viscoelastic data alongside conceptual and simulated molecular representations. The top panel is a log-log plot showing the complex shear modulus, G* - iηω (Pa), as a function of angular frequency, ω (s⁻¹). The x-axis ranges from 10⁰ to 10⁶ s⁻¹, and the y-axis ranges from 10⁻...
Figure 6. DLSμR captures the entangled dynamics of intestinal mucus of healthy and colitic mice. Top left: Dependence of the shear modulus G* on angular frequency ω of intestinal mucus isolated from healthy mice. The shear modulus exhibits three regimes, A, B, and C, which we identify as corresponding to reptation of p...
The figure is a composite of two log–log rheological spectra (top row), three labeled schematic cartoons (bottom left), and four confocal fluorescence micrographs (bottom right). Top left: a log10–log10 plot of G* (Pa) versus angular frequency ω (s−1) from ~10−1 to 105 s−1 (x-axis ticks: 10−1, 100, 101, 102, 103, 104, ...
The figure displays a composite of rheological spectra, polymer dynamics schematics, and confocal microscopy images. The top left panel is a log-log plot of shear modulus G* (Pa) versus angular frequency ω (s⁻¹), ranging from 10⁻¹ to 10⁵ s⁻¹ for ω and 10⁰ to 10³ Pa for G*. It presents two curves, G' (red) and G'' (blue...
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