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Paper Citation Record · LEDGER

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production

As of 11 August 2026, this Paper Citation Record lists 100 of 243 outbound references and 0 inbound Pith citation observations for arXiv:2608.06877.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2608.06877 v1

Coverage vector

measured 100 of 243 reference resolution

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measured 100 of 100 standing notices

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measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

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measured 0 of 1 external citation measurements

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Source: cited_works

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100 of 243 outbound references displayed

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Outbound references

Observation bb918872-db52-4a8b-9b93-5ad0847698a9 · outbound

This paper cites et al.Machine-Learning-DrivenDiscoveryofWaterSplittingBaFe2O4andHuman-in-the- LoopImprovementviaAl-SubstitutionforIncreasedThermalStability.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Machine-Learning-DrivenDiscoveryofWaterSplittingBaFe2O4andHuman-in-the- LoopImprovementviaAl-SubstitutionforIncreasedThermalStability

Reference 1

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Observation eddca7b9-da9d-442d-a8e3-3fcd78e21f8d · outbound

This paper cites et al.Areviewofsolarthermochemicalcyclesforfuelproduction.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Areviewofsolarthermochemicalcyclesforfuelproduction

Reference 2

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Observation 9e3392b3-ee23-4dd6-acbe-ebdfb78719c3 · outbound

This paper cites Green Energy Environ.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Green Energy Environ

Reference 3

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This paper cites an unresolved cited work.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

Reference 4

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Observation d2316938-9dde-4594-9adf-1a159b5762fc · outbound

This paper cites Energy 290,130187(2024).

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Energy 290,130187(2024)

Reference 5

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This paper cites et al.Advancingproductionofhydrogenusingnuclearcycles-integrationofhightemperature gas-cooledreactorswiththermochemicalwatersplittingcycles.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Advancingproductionofhydrogenusingnuclearcycles-integrationofhightemperature gas-cooledreactorswiththermochemicalwatersplittingcycles

Reference 6

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This paper cites an unresolved cited work.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

Reference 7

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This paper cites et al.Wasteheatvalorizationforhydrogenproduction:ameta-analyticreviewoftechnologies, challenges,andpathstonet-zero.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Wasteheatvalorizationforhydrogenproduction:ameta-analyticreviewoftechnologies, challenges,andpathstonet-zero

Reference 8

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

Reference 9

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Observation cb1bb12f-a7ce-44ef-9583-cafb195b8c94 · outbound

This paper cites et al.Solarfuelsproduction:Two-stepthermochemicalcycleswithcerium-basedoxides.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Solarfuelsproduction:Two-stepthermochemicalcycleswithcerium-basedoxides

Reference 10

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Observation 92cbe3b6-db94-4ca9-9208-6d37cd45f4b0 · outbound

This paper cites Energy Convers.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Energy Convers

Reference 11

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Observation a7a8ef05-06b5-4a87-90c5-48e7379ed360 · outbound

This paper cites et al.PerovskiteOxideMaterialsforSolarThermochemicalHydrogenProductionfromWater SplittingthroughChemicalLooping.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.PerovskiteOxideMaterialsforSolarThermochemicalHydrogenProductionfromWater SplittingthroughChemicalLooping

Reference 12

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

Reference 13

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Observation b5c764b3-eb77-4fee-ad21-ddf58e8b11d5 · outbound

This paper cites et al.Areviewandperspectiveofefficienthydrogengenerationviasolarthermalwater splitting.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Areviewandperspectiveofefficienthydrogengenerationviasolarthermalwater splitting

Reference 14

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This paper cites et al.Water-splittingmechanismanalysisofSr/CadopedLaFeO3towardscommercialefficiencyof solarthermochemicalH2production.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Water-splittingmechanismanalysisofSr/CadopedLaFeO3towardscommercialefficiencyof solarthermochemicalH2production

Reference 15

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Observation ddef8eff-0c63-4101-b807-1eb4a8b8eb44 · outbound

This paper cites Energy Environ.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Energy Environ

Reference 16

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Observation 2982fd3e-21f6-4cfb-904b-2d1e86dcdde3 · outbound

This paper cites Energy Environ.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Energy Environ

Reference 17

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Observation bda15704-46a0-48e1-b432-e13b2243c0fb · outbound

This paper cites Energy Environ.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Energy Environ

Reference 18

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Observation 8f41ef98-579c-4927-a681-45156f6fa166 · outbound

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

Reference 19

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This paper cites et al.Hydrogenproductionviaatwo-stepwatersplittingthermochemicalcyclebasedonmetal oxide–Areview.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Hydrogenproductionviaatwo-stepwatersplittingthermochemicalcyclebasedonmetal oxide–Areview

Reference 20

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.High-FluxSolar-DrivenThermochemicalDissociationofCO2andH2OUsing NonstoichiometricCeria

Reference 22

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.OutstandingPropertiesandPerformanceofCaTi0.5Mn0.5O3–δforSolar-Driven ThermochemicalHydrogenProduction

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.CompositionallyComplexPerovskiteOxidesforSolarThermochemicalWaterSplitting

Reference 33

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.FavorableRedoxThermodynamicsofSrTi0.5Mn0.5O3−δinSolarThermochemicalWater Splitting

Reference 34

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Observation 4111de11-5b36-404a-a9cd-0e2194c15b1a · outbound

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Observation 7c9a4700-882d-4ba2-b9b5-898c15480310 · outbound

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Observation f4a49dd4-0a34-434f-ab35-745933da1cbc · outbound

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Observation e890879b-dd10-4612-890a-d683878fe84b · outbound

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Observation 5d6d5d4a-cf7d-4bd0-a9d1-c67b9d9d3a5a · outbound

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Observation 264139fe-18c5-4792-975b-829bde5d475b · outbound

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Observation e1bf1067-3470-4b06-86b2-f40127d05883 · outbound

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source=pdf_text observed=2026-08-10T19:11:33.633113Z digest=sha256:49c50293021ee58643508edc7e7a1e05d22e49298598253412041298b58d2ca0

Observation d100e369-79f3-4c86-bca7-717b6eaf1dfe · outbound

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Observation 2cfe4f03-b306-48d2-b6fd-9f8501d5c419 · outbound

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Observation f3ac15eb-6372-4f0f-9d47-0f61cab2c741 · outbound

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Observation 8f5063ac-7699-49db-8c17-5ddc55ac7800 · outbound

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Observation bf1cdccb-6c43-4320-ae89-9637f6e4fb68 · outbound

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Observation 51358794-4240-4126-91db-0461b8bf1a6d · outbound

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Energy 201,117649(2020)

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Observation 9e6917ec-e610-472f-baf1-5f86f3f119fa · outbound

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Observation 31422e14-ed4f-4fc7-891e-4e79185b384c · outbound

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Observation 328d4e3a-3a24-4c55-8f49-9cf2564b5115 · outbound

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Observation 46cbf185-ae17-49b5-ac08-37aba4123b00 · outbound

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source=pdf_text observed=2026-08-10T19:11:33.694575Z digest=sha256:3a031aaee6323b197d7d7f3f6575dc105a62923faa3c68bff4a8e12fb0b5f1fd

Observation 9ebfbc58-c014-4890-82ec-3a43e6ef2a47 · outbound

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Observation 23da8dcf-541c-4db4-9ead-876316535ad6 · outbound

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Observation 3c89463e-6a06-412e-bc10-30d6bd2b9339 · outbound

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Observation c5978984-0d72-4fd0-af9e-afcf003d4075 · outbound

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Observation 815893cf-f4ed-4afb-9ba7-b3bc461fb1a8 · outbound

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Observation db39e6e6-ceda-4db8-81e7-ea63865b9263 · outbound

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Observation f16d11f8-e334-4044-b4c8-a7d1afb83e59 · outbound

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Observation b9afd431-6fa4-4448-9840-9e892a413ecc · outbound

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Observation 948e6ee5-ee4d-47ff-914c-50de3af04c43 · outbound

This paper cites et al.ModulatingLatticeOxygeninDual-FunctionalMo-V-OMixedOxidesforChemical LoopingOxidativeDehydrogenation.

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Observation 1a4862b3-e012-4ec8-8d9d-942e5fc0f27e · outbound

This paper cites et al.AdecadeofceriabasedsolarthermochemicalH2O/CO2splittingcycle.

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Observation aafd3455-e8d2-466f-a2fc-765674fc6436 · outbound

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Observation 59011e0f-b912-48e1-989c-b6d737fc57ac · outbound

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Observation b121996b-fcd9-4a47-9983-e8a88ccc4058 · outbound

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Self-DrivingLaboratoriesforChemistryandMaterialsScience

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Observation 8b2d4678-1756-4fba-9841-fb856fc9e2d1 · outbound

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Anautonomouslaboratoryfortheacceleratedsynthesisofinorganicmaterials

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Observation dfabaf98-f1b2-493c-a3ec-01bd55fc4fc5 · outbound

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Observation 26602477-ad93-4fd0-862a-8941719858a8 · outbound

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Observation c5c13212-b524-4657-bb95-e004aefe0bbf · outbound

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.AcceleratedPerovskiteOxideDevelopmentforThermochemicalEnergyStoragebya High-ThroughputCombinatorialApproach

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Observation 46b768df-b9bc-4863-956d-89f9df6427a0 · outbound

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Observation e0d53cbc-05c2-4a5d-a74f-8c50a7cb1357 · outbound

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Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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Observation 02900c96-cfe1-421a-98cb-73b1ecd8a5fc · outbound

This paper cites et al.On-the-flyclosed-loopmaterialsdiscoveryviaBayesianactivelearning.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.On-the-flyclosed-loopmaterialsdiscoveryviaBayesianactivelearning

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Observation ec9b2587-defd-4455-a8ad-9e904b5a9eaa · outbound

This paper cites an unresolved cited work.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

Reference 77

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Observation 80df5069-f045-42f2-b8ef-f89605b576e8 · outbound

This paper cites an unresolved cited work.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

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source=pdf_text observed=2026-08-10T19:11:33.831046Z digest=sha256:32edddb851b3c98e2c24f3258007a28a74c7d3579ecbc0fdd855f0dfa0873395

Observation 1846c567-c4db-4e5c-b82f-cd32b43a7093 · outbound

This paper cites Energy Environ.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Energy Environ

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source=pdf_text observed=2026-08-10T19:11:33.836441Z digest=sha256:70d19d7cec0f8feb180807f702bbd640292a0233ea34997a807604e6e4b56a55

Observation 959e7e77-b7b9-4a19-a363-b1b81b42b410 · outbound

This paper cites et al.ComputationallyGuidedDiscoveryofMixedMn/NiPerovskitesforSolar ThermochemicalHydrogenProductionatHighH2Conversion.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.ComputationallyGuidedDiscoveryofMixedMn/NiPerovskitesforSolar ThermochemicalHydrogenProductionatHighH2Conversion

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Observation 0788f2a2-fe3e-4315-a4e0-702d37dfa3ed · outbound

This paper cites an unresolved cited work.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

Reference 81

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source=pdf_text observed=2026-08-10T19:11:33.849133Z digest=sha256:11cc5348a3b6da964dacccb383ee8f9de7cfb9ac217a549c4b0c3e962f339618

Observation 5a7a8291-2a4b-4116-afdb-b2c345b7ab64 · outbound

This paper cites et al.Fromhigh-entropyceramicstocompositionally-complexceramics:Acasestudyof fluoriteoxides.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Fromhigh-entropyceramicstocompositionally-complexceramics:Acasestudyof fluoriteoxides

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source=pdf_text observed=2026-08-10T19:11:33.855062Z digest=sha256:b65ef4cdbe56764da2389f7290fcb91a476c00ac97aba23f344cfcdc8aec490d

Observation b773f800-7311-455f-9bb9-76587099ddeb · outbound

This paper cites Catalysts 12,(2022).

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Catalysts 12,(2022)

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source=pdf_text observed=2026-08-10T19:11:33.863431Z digest=sha256:b24f664ad08c43d1eb3af874c2c5e845bb17637b8495b06af1145257a080a6f1

Observation 488cce33-8e8b-46ea-9d78-2c222225c63e · outbound

This paper cites et al.SubsurfaceA-sitevacancyactivateslatticeoxygeninperovskiteferritesformethane anaerobicoxidationtosyngas.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.SubsurfaceA-sitevacancyactivateslatticeoxygeninperovskiteferritesformethane anaerobicoxidationtosyngas

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source=pdf_text observed=2026-08-10T19:11:33.870684Z digest=sha256:f74621e4e2bf087e6f79c32f26740d80dad15b39a7b22cb9fc95ffe68c7bd72e

Observation efa1c375-f5aa-4a22-bea8-6761ca68a009 · outbound

This paper cites et al.ProbingOne-DimensionalOxygenVacancyChannelsDrivenbyCation-AnionDouble OrderinginPerovskites.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.ProbingOne-DimensionalOxygenVacancyChannelsDrivenbyCation-AnionDouble OrderinginPerovskites

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source=pdf_text observed=2026-08-10T19:11:33.877485Z digest=sha256:b79f7e6b32ac81985b60157fec67e5ae54b50f22992b40f7d8a59214c4e23c07

Observation 82906f8d-40cf-4da9-9259-2819247a8530 · outbound

This paper cites et al.UnravelingtheTrade-OffBetweenOxygenVacancyConcentrationandOrderingof PerovskiteOxidesforEfficientLatticeOxygenEvolution.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.UnravelingtheTrade-OffBetweenOxygenVacancyConcentrationandOrderingof PerovskiteOxidesforEfficientLatticeOxygenEvolution

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source=pdf_text observed=2026-08-10T19:11:33.881944Z digest=sha256:faf1389b2bcda14c28d0018dda135fba9a1fcd85e5b1a832d05e07a28864ee1d

Observation 052a4562-cd86-4658-a3dd-c5c9eb91c63b · outbound

This paper cites et al.Ambient-pressureozonetreatmentenablestuningofoxygenvacancyconcentrationinthe La1−xSrxFeO3−δ(0≤x≤1)perovskiteoxides.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Ambient-pressureozonetreatmentenablestuningofoxygenvacancyconcentrationinthe La1−xSrxFeO3−δ(0≤x≤1)perovskiteoxides

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source=pdf_text observed=2026-08-10T19:11:33.887033Z digest=sha256:95c5408a22b448fa2d739a3752fd4038f0ac3a2decd7bd029b4100e004a1abb6

Observation 8cbd8958-e43c-4e24-8433-32cdb80d1774 · outbound

This paper cites et al.AReviewofSolarThermochemicalCO2SplittingUsingCeria-BasedCeramicsWith DesignedMorphologiesandMicrostructures.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.AReviewofSolarThermochemicalCO2SplittingUsingCeria-BasedCeramicsWith DesignedMorphologiesandMicrostructures

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source=pdf_text observed=2026-08-10T19:11:33.894642Z digest=sha256:cd17d04a80df5b3b63ae13b21f674bf1c6c4c535da1443e1254c2ff6124c2ec9

Observation 5f76655a-8f50-4171-a8a8-767a318a83c1 · outbound

This paper cites et al.Discoveryofareversibleredox-inducedorder-disordertransitionina10-component compositionallycomplexceramic.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Discoveryofareversibleredox-inducedorder-disordertransitionina10-component compositionallycomplexceramic

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source=pdf_text observed=2026-08-10T19:11:33.899826Z digest=sha256:25c4d76544f6fe3d5596fd5faae2f9c2ea6965e7b5fb23e9cb58e0b364d1c980

Observation 3c1472fe-b3ac-4b73-9c86-8214632520ad · outbound

This paper cites et al.Single-phaseduodenaryhigh-entropyfluorite/pyrochloreoxideswithanorder- disordertransition.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Single-phaseduodenaryhigh-entropyfluorite/pyrochloreoxideswithanorder- disordertransition

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source=pdf_text observed=2026-08-10T19:11:33.904488Z digest=sha256:4b20a063f37bb75fd83d51c015612e1a64a4c8e0c10ecbe124961242271d1765

Observation 48445629-b81f-40a1-bfd5-473df8359882 · outbound

This paper cites an unresolved cited work.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

Reference 91

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source=pdf_text observed=2026-08-10T19:11:33.911255Z digest=sha256:e9a8b3bcdf51954b0072129c7855e324437af91da67cf7c1c5928127edc1ab2c

Observation 88be2a6c-3296-42f2-8537-91b4920310a4 · outbound

This paper cites Energy 89,924–931(2015).

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Energy 89,924–931(2015)

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source=pdf_text observed=2026-08-10T19:11:33.918304Z digest=sha256:e397b4592e0d77bb437a0312528af8ae8fe3db868bbd4015ab03bd9edfbf1f6e

Observation 53e266d6-eb72-4257-ba05-df0f872e5058 · outbound

This paper cites et al.Agenerativemodelforinorganicmaterialsdesign.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Agenerativemodelforinorganicmaterialsdesign

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source=pdf_text observed=2026-08-10T19:11:33.930623Z digest=sha256:a408670003de23c6866fe821b0a3e8569cbb4c6b1e0201044cee9e1201c69cfe

Observation 25babd53-c1be-4a78-affe-7cbed68c2ebe · outbound

This paper cites an unresolved cited work.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

Reference 94

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source=pdf_text observed=2026-08-10T19:11:33.937042Z digest=sha256:7a98bd877f1e8389fbb1b43d97997062e64890c970228e0cae32d96eb2711b09

Observation 9d43f85e-ea76-48e4-b7fb-0fc579ca3ac8 · outbound

This paper cites et al.Abinitiostructuresolutionsfromnanocrystallinepowderdiffractiondataviadiffusion models.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Abinitiostructuresolutionsfromnanocrystallinepowderdiffractiondataviadiffusion models

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source=pdf_text observed=2026-08-10T19:11:33.940995Z digest=sha256:bbb52c26b9b8964cdb23cc3db570a37fc46115047284535e3f78f00f714a2fbe

Observation 3fbead7b-92da-4656-a601-179abcdc4906 · outbound

This paper cites an unresolved cited work.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Unresolved cited work

Reference 96

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source=pdf_text observed=2026-08-10T19:11:33.946506Z digest=sha256:e64b1d22895a8d0dac66c090514026ec9bd1f81d49f8837c34b20eea99e353da

Observation 96504bf9-0763-4cc3-97b7-b17fc75e289e · outbound

This paper cites Energy Environ.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Energy Environ

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source=pdf_text observed=2026-08-10T19:11:33.952612Z digest=sha256:a17a42f7649f483fa37bfbeb9287d31ff24712d0a02d8e98c2c725cfd7711c9d

Observation 15f3da95-7431-45e8-a46c-7e2d530d20bc · outbound

This paper cites Energy Convers.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Energy Convers

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source=pdf_text observed=2026-08-10T19:11:33.956835Z digest=sha256:e8a4d6c210b74e37e82566fe479b3ad0dea68bbc89a2555ec8aea01b0003232c

Observation e30680df-b20f-4e1d-8449-d4e6bfed00f6 · outbound

This paper cites Fuel 265,116983(2020).

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production Fuel 265,116983(2020)

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source=pdf_text observed=2026-08-10T19:11:33.960637Z digest=sha256:75eb71ce1f1a217cce6e140b8251b93145180f1ac4a4dff7b9c294ed8a2707d8

Observation 864b5f71-8de8-4bc4-ab55-972d8406fcc0 · outbound

This paper cites et al.Thermalandmechanicalbehaviourofoxygencarriermaterialsforchemicallooping combustioninapackedbedreactor.

Autonomous Optimization of Complex Oxides for Thermochemical Fuel Production et al.Thermalandmechanicalbehaviourofoxygencarriermaterialsforchemicallooping combustioninapackedbedreactor

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source=pdf_text observed=2026-08-10T19:11:33.965176Z digest=sha256:24958670a97586df73f11a837f4af3ee97bb7f60bd47f5d86ff3dc890ccd720a

Pith citing papers

No inbound Pith citation observations are available.