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crystal phase structures  (Bruker Corporation)


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    Structured Review

    Bruker Corporation crystal phase structures
    Crystal Phase Structures, supplied by Bruker Corporation, used in various techniques. Bioz Stars score: 99/100, based on 181736 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/crystal+phase+structures/D8+ADVANCE/pm41934760-88-10-4
    Average 99 stars, based on 181736 article reviews
    crystal phase structures - by Bioz Stars, 2026-09
    99/100 stars

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    Article Title: Fused deposition modelling 3D printing incorporates BiOCl morphology regulation as a strategy for developing bespoke photocatalytic reactor.
    Article Snippet: Fused deposition modeling (FDM), a widely adopted 3D printing technique, enables fabrication of carrier components for supported photocatalysts, thereby improving recyclability of nanoscale photocatalysts.. However, incorporation of a solid carrier requires precise regulation of the reaction system during catalyst preparation to maintain stable and efficient photocatalytic performance.. Herein, a maple-leaf-like reactor was fabricated using polylactic acid/poly(butylene adipate-co-terephthalate)/Chlorella composite filaments, followed by surface immobilization of bismuth oxychloride (BiOCl) via a mild, room-temperature solvent-assisted process.

    Article Title: Amorphous FeOOH nanoparticles decorated on defect-rich porous Ni MOF nanosheet based hierarchical architectures toward superior OER performance
    Article Snippet: Although metal–organic frameworks (MOFs) with unique characteristics such as a large surface area, high designability as well as a diversity of structures have been demonstrated as promising materials for highly efficient electrocatalysts toward the oxygen evolution reaction (OER), their performance still cannot meet the industrial requirements.. Herein, amorphous FeOOH nanoparticles decorated on defect-rich porous Ni MOF nanosheet based hierarchical architectures were constructed via a simple electrodeposition route and their corresponding potential for the OER was explored.. In detail, the defect-rich porous Ni MOF nanosheets were firstly synthesized by a hydrothermal route, followed by alkali etching treatment.

    Article Title: TiO2 nanorods branched on fast-synthesized large clearance TiO2 nanotube arrays for dye-sensitized solar cells
    Article Snippet: A large clearance TiO2 nanotube arrays (LTAs) has been synthesized by a not more than 12 h anodization duration and based on this a branched TiO2 nanotube arrays (BLTs) has been achieved through TiO2 nanorods branch-like grown on the LTAs.. Some key factors and probable mechanisms of the fabrication processes on two novel nanoarchitectures are discussed.. Exhilaratingly, it is found that the obtained LTAs has demonstrated large pore diameter and void spaces (pore diameter 350 nm; void spaces 160 nm; and tube length 3.5 mm), and the synthesized hierarchical BLTs, compared with conventional TiO2 nanotube arrays, has shown a much stronger dye absorption performance and an approximately double of the solar cell efficiency (in our case from 1.62% to 3.18% under simulated AM 1.5 conditions).

    Article Title: High performance and durable NC@MnCo/NC catalysts for oxygen reduction reaction
    Article Snippet: Exploring cost-effective catalysts with high activity for oxygen reduction reaction (ORR) is a pivotal approach to tackling the sluggish kinetics of fuel cell cathode.. Herein, a series of NC@MnxCoy/NC catalysts with some carbon nanotubes (CNTs) on the surfaces are prepared by the pyrolysis of core-shell structured ZIF-8@MnxCoy-ZIF.. The doping of Mn increases the N contents and improves electronic conductivity.

    X-ray Diffraction:

    Article Title: Exciton-free, nonsensitized degradation of 2-naphthol by facet-dependent BiOCl under visible light: novel evidence of surface-state photocatalysis.
    Article Snippet: Photoreactivity for photodegradation of 2-NAP on BiOCl nanosheets with dominant exposed (010) and (001) facets is studied under visible light via an exciton-free and nonsensitized mechanism.. This phenomenon cannot be explained by semiconductor theory or self-sensitized (as those involve dyes) mechanisms.. The photocatalytic activities are mainly owing to the formation of the surface state, which is confirmed to be the surface complex Bi−O−C10H7.



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