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PCN-222 / MOF-545

This family merges chemical shorthand and formula variants only after verification against source articles. Per-paper composition and phase details remain separate below.

5primary papers
14material records
32linked samples
50linked measurements
207linked results
2020–2025publication span

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  • Several formulas or formula descriptions are reported
  • More than one known dimensionality is reported
  • Pristine, composite, derived or model contexts are mixed

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5 papers

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Show 14 material identity records
Paper and reported nameFormula and componentsStructure contextSource
MOF-5452025 · Metal–Organic Frameworks Coordination-Oriented Polymer Dielectrics for Neuromorphic Vision SensorsZr6O8(H2O)8(TCPP-H2)2Zr6O8(H2O)8 clusters · TCPP-H2unknown · PristineZr MOF control with different particle sizes and rod-like morphologies.6 · 3.2 Preparation and Light Detection Properties of NeuVS Devices · Supporting Information Figure S17E
Fe porous coordination network 222 (PCN-222)2022 · Polythiophene hybrid film with zirconium–porphyrin metal–organic framework for improved charge carrier transport and NO2 gas sensingNot specifiedZr6 cluster nodes with Fe(III) porphyrin centres · 5,10,15,20-tetrakis-(4-carboxyphenyl)-porphine-Fe(III) chloride (Fe-TCPP-Cl)3D · Pristine3D hemoglobin-like zirconium-porphyrin MOF; powder XRD matched the simulated PCN-222 pattern.2 · Introduction
PCN-222/P3HT blend film2022 · Polythiophene hybrid film with zirconium–porphyrin metal–organic framework for improved charge carrier transport and NO2 gas sensingNot specifiedPCN-222 Zr6/Fe-porphyrin component · Fe-TCPP-Cl within PCN-222; P3HT polymer matrix3D · CompositeComposite organic semiconductor/MOF thin film with PCN-222 nanocrystals embedded in P3HT.4 · 3. Results and discussion · Fig. 3
PCN-222 (no metal)2021 · Effective visible-light CO2 photoreduction over (metallo)porphyrin-based metal–organic frameworks to achieve useful hydrocarbonsnot reported; Zr6-cluster porphyrinic PCN-222 without porphyrinic metalZr6 oxo clusters; no porphyrinic metal centre · free-base tetrakis(4-carboxyphenyl)porphyrin (H2TCPP)3D · PristinePorphyrinic PCN-222 control framework2 · Photocatalytic reaction · Figure 6; Table 1
PCN-222(Co)2021 · Effective visible-light CO2 photoreduction over (metallo)porphyrin-based metal–organic frameworks to achieve useful hydrocarbonsnot reported; Zr6-cluster PCN-222 with CoTCPP linkerZr6 oxo clusters and Co porphyrinic metal centres · tetrakis(4-carboxyphenyl)porphyrin metallated with Co (CoTCPP / MTCPP)3D · Pristine3D mesoporous needle-shaped PCN-222(M) framework; PXRD confirms PCN-222(M) structure2-3 · Introduction; Characterization of catalyst · Figure 1; Figure 2
PCN-222(Cu)2021 · Effective visible-light CO2 photoreduction over (metallo)porphyrin-based metal–organic frameworks to achieve useful hydrocarbonsnot reported; Zr6-cluster PCN-222 with CuTCPP linkerZr6 oxo clusters and Cu porphyrinic metal centres · tetrakis(4-carboxyphenyl)porphyrin metallated with Cu (CuTCPP / MTCPP)3D · Pristine3D mesoporous needle-shaped PCN-222(M) framework; PXRD confirms PCN-222(M) structure2-3 · Introduction; Characterization of catalyst · Figure 1; Figure 2
PCN-222(Fe)2021 · Effective visible-light CO2 photoreduction over (metallo)porphyrin-based metal–organic frameworks to achieve useful hydrocarbonsnot reported; Zr6-cluster PCN-222 with FeTCPP linkerZr6 oxo clusters and Fe porphyrinic metal centres · tetrakis(4-carboxyphenyl)porphyrin metallated with Fe (FeTCPP / MTCPP)3D · Pristine3D mesoporous needle-shaped PCN-222(M) framework; PXRD confirms PCN-222(M) structure2-3 · Introduction; Characterization of catalyst · Figure 1; Figure 2
PCN-222(Ni)2021 · Effective visible-light CO2 photoreduction over (metallo)porphyrin-based metal–organic frameworks to achieve useful hydrocarbonsnot reported; Zr6-cluster PCN-222 with NiTCPP linkerZr6 oxo clusters and Ni porphyrinic metal centres · tetrakis(4-carboxyphenyl)porphyrin metallated with Ni (NiTCPP / MTCPP)3D · Pristine3D mesoporous needle-shaped PCN-222(M) framework; PXRD confirms PCN-222(M) structure2-3 · Introduction; Characterization of catalyst · Figure 1; Figure 2
Ag-stabilized PCN-222 2D nanorod superlattice2020 · Colloidal crystal engineering with metal–organic framework nanoparticles and DNAPCN-222 nanorods + DNA linkers + Ag+ stabilizationPCN-222 Zr6 clusters; Ag+ stabilises DNA bonds · TCPP porphyrin linkers and DNA linker strands2D · CompositeAg+-stabilized PCN-222 nanorod superlattice retaining PCN-222 crystallinity after thermal/chemical treatments and catalysis.6 · Photocatalytic activity of the 2D PCN-222 nanorod superlattices · Fig. 5
AuHPCN-2222020 · Ultrasmall Au(0) Inserted Hollow PCN-222 MOF for the High-Sensitive Detection of EstradiolAu(0)-functionalised hollow PCN-222; XPS Au atomic percent 1.03%Zr-based PCN-222 nodes plus subnanometre Au(0) anchored in porphyrin coordination sites · TCPP porphyrin linker with postsynthetically inserted Au(0)3D · CompositeAu inserted into hollow PCN-222 with retained PCN-222 PXRD; XPS Au 4f peaks at 83.59 and 87.23 eV attributed to porphyrin-coordinated Au(0); EDX maps show homogeneous Zr, C, N, O and Au distribution.rendered page 3 / article p.4568 · Results and Discussion · Figure 1b,c; Figure 2d; Table S1
AuSPCN-2222020 · Ultrasmall Au(0) Inserted Hollow PCN-222 MOF for the High-Sensitive Detection of EstradiolAu(0)-functionalised solid PCN-222Zr-based PCN-222 nodes plus postsynthetically inserted Au(0) · TCPP porphyrin linker with postsynthetically inserted Au(0)3D · CompositeAu-inserted solid PCN-222 with retained MOF PXRD, used as morphology control against AuHPCN-222.rendered page 3 / article p.4568 · Results and Discussion · Figure 1a; Figure 2b
hollow PCN-222 (HPCN-222)2020 · Ultrasmall Au(0) Inserted Hollow PCN-222 MOF for the High-Sensitive Detection of EstradiolZr-porphyrin MOF, PCN-222 structureZr-based nodes from zirconium tetrachloride · meso-tetra(carboxyphenyl)porphyrin (TCPP)3D · PristinePowder X-ray diffraction peaks at 4.9, 7.2, 8.37 and 9.79 degrees match reported PCN-222; morphology described as hollow porous tube assembled from smaller nanocubes.rendered page 2 / article p.4567 · Experimental Section; Results and Discussion · Figure 1a
PCN-222 / MOF-545 zirconium porphyrinic MOF nanorods2020 · Colloidal crystal engineering with metal–organic framework nanoparticles and DNAZr6O8(H2O)8(TCPP-H2)2Zr6 secondary building units · TCPP-H2 = tetrakis(4-carboxyphenyl)porphyrin linker3D · PristineRod-shaped porphyrinic zirconium MOF, also referred to as PCN-222/MOF-545, assembled into 2D hexagonal or tetragonal superlattices.4 · Building block shape as a structure-influencing factor · Fig. 4d
solid PCN-222 (SPCN-222)2020 · Ultrasmall Au(0) Inserted Hollow PCN-222 MOF for the High-Sensitive Detection of EstradiolZr-porphyrin MOF, PCN-222 structureZr-based nodes from zirconium tetrachloride · meso-tetra(carboxyphenyl)porphyrin (TCPP)3D · PristinePXRD pattern assigned to PCN-222; solid morphology used as comparison to hollow PCN-222.rendered page 2 / article p.4567 · Experimental Section · Figure 1a