Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-01T15:01:35.919356Z
Paper Citation Record · LEDGER
As of 16 August 2026, this Paper Citation Record lists 83 of 83 outbound references and 0 inbound Pith citation observations for arXiv:2607.18594.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-01T15:01:35.919356Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-15T06:32:42.880941+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
83 of 83 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 9a0b1151-037b-4532-ade0-08de3ac9d825 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Negative thermal expansion: a review.J
Reference 1
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Observation 5086fa96-ae68-432c-95a9-3c87278f3007 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Negative thermal expansion in molecu- lar materials.Chem
Reference 2
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Observation 0637103c-4603-434e-88ad-eb9d02f8c190 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Negative thermal expansion in functional materials: con- trollable thermal expansion by chemical modifi- cations.Chem
Reference 3
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Observation e6236d1b-9e4a-4735-a4bb-a76596f3193d · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Unresolved cited work
Reference 4
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Observation bd7f4977-4f37-4e65-9826-5594bdd6ed74 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion A novel negative thermal expansion metamaterial for supersonic aerothermoelastic flutter suppression.Aerosp
Reference 5
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Observation 123f79d0-07f5-494a-8755-b7652e67ca71 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion S.; Elbestawi, M
Reference 6
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Observation 2bdcbd11-8973-40fb-9ceb-66302ae5e376 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Sci.2026, e75748
Reference 7
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Observation b20909db-350b-4126-a438-6d62fe298292 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Unresolved cited work
Reference 8
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Observation f32a819c-da4e-401a-bb04-815628f582f7 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion J.; Pe- terson, V
Reference 9
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Observation 6905f73c-119c-4d18-b755-afabc10b58c8 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion S.; Ellis, D
Reference 10
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Observation 6c7b2862-fd59-462e-8918-aa211c34c87b · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion R.; Walker, A
Reference 11
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Observation 5aff80b5-e2e4-4b91-ad09-f197ab8e57e9 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion R.; Yaghi, O
Reference 12
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Observation 73d99d63-560e-4270-8ac7-3cc23b33d90f · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion E.; O’Keeffe, M.; Yaghi, O
Reference 13
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Observation 29fc704d-ba25-4b31-a32a-09ff2aea8380 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion M.; O’Keeffe, M.; Ockwig, N
Reference 14
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Observation ab288dfa-88da-442b-9faa-2dc94a91913a · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion P.; Schmid, R.; Bedoya-Mart ´ ınez, N.; Zojer, E
Reference 15
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Observation d990cab3-ea87-4a11-9cf8-a87c00ebf282 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Unresolved cited work
Reference 16
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Observation 4008c333-16a1-4d3b-a8dd-7d3e2a8b2636 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion V.; Firlej, L
Reference 17
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Observation 77d13b7f-2395-4e7f-976c-1b9691a5101c · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion M.Electrons and Phonons: The The- ory of Transport Phenomena in Solids; Oxford University Press, 2001; Vol
Reference 18
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Observation ae46d68b-8044-4847-bae7-9e2fd5e6daa2 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Negative thermal expansion ma- terials: technological key for control of thermal expansion.Sci
Reference 19
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Observation db2866ba-f9d4-4046-ae82-f8175cb1b4e4 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion D.; D¨ urholt, J
Reference 20
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Observation a13e795a-a94d-42ad-b3db-a5302cb30380 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion M.; Kamath, P
Reference 21
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Observation 02c09d56-54ec-4260-9e91-9dbc39ad2703 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Understanding the origin of the par- ticularly small and anisotropic thermal expan- sion of MOF-74.Adv
Reference 22
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Observation 40dd8742-0fe7-4874-87ad-32743d36f593 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Tran- sition from isotropic positive to negative ther- mal expansion by local Zr6O8 node distortion in MOF-801.Microstructures2024,4, N–A
Reference 23
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Observation d5b23ee5-8e8d-4975-b59f-f08d4791bf3f · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion C.; Baxter, S
Reference 24
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Observation 51eecf2b-4029-4682-a2bb-e96f9672e757 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion J.; Schneemann, A.; Ready, A
Reference 25
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Observation e331a2f0-f97d-4343-b2d1-ae012dded540 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion J.; Hill, J
Reference 26
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Observation 2c297c9e-3d78-4081-8ba4-91ba6bc55372 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion G.; Crocell` a, V.; Mink, J.; Fis- cher, R
Reference 27
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Observation f2c89ef8-fb4f-4bd0-aaa3-fa2ac79468ad · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion M.; Chen, Z.; Hofmann, J.; Chap- man, K
Reference 28
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Observation d4b5d654-a1c1-4d8a-9b8b-898269ed4d34 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion A.; Jiang, J
Reference 29
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Observation 986cd5de-8c88-449a-82de-2f102d1094f8 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion T.; Wei, Z.; Phillips, A
Reference 30
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Observation 892a278a-58a0-4135-8e1d-0448be8ef3db · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion K.; Casewit, C
Reference 31
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Observation 8b18bbcf-f985-4d67-8c63-9a0d5cf7cf37 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion K.; Schmid, R
Reference 32
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Observation 251dc946-0d7e-4810-9a06-0bfec92f4021 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Machine learned force- fields for an Ab-initio quality description of metal–organic frameworks.npj Comput
Reference 33
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Observation dac7b13d-e05d-4c94-b0da-782735f0633b · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion K.; Skelton, J
Reference 34
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Observation 6950ed20-fe68-4d35-b694-2aea86be44c5 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion M.; Novotny, B
Reference 35
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Observation a95998e9-b091-46df-afd4-b8d33e9021ef · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion A.; Loh, N
Reference 36
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Observation 5a88095c-c6f8-49c8-a07a-8557584d0a11 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion D.; Persson, K
Reference 37
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Observation f9682e43-858e-49d8-87d0-82849ab803a5 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Unresolved cited work
Reference 38
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Observation 790ad5c1-6e75-43ec-84b2-19dcdfac3f8d · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Unresolved cited work
Reference 39
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Observation aff00865-ecd6-4ccd-a1e2-e54f93ff10c8 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Unresolved cited work
Reference 40
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Observation eb17d286-8fa0-47c3-8bf7-94d4b2bbf25b · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion S.; Iyer, S
Reference 41
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Observation aa74ef90-9653-4d51-9d44-71b4b34d1ce0 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion S.; Fung, V.; Huck, P.; O’Donnell, C
Reference 42
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Observation 3ea55e7d-c7a8-456f-abc0-4b14f4857a4c · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Implementation strategies in phonopy and phono3py.J
Reference 43
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Observation 74ccf752-f16b-4f9a-8440-a367c03a0a2d · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion First-principles Phonon Calculations with Phonopy and Phono3py.J
Reference 44
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Observation 91c8b564-d538-4500-9b24-5a1db6ceb19a · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion F.; Fern´ andez- Alonso, F.; Mukhopadhyay, S
Reference 45
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Observation 7c30aa03-5aad-4ba5-8e0c-1a4e7059a4ef · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Unresolved cited work
Reference 46
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Observation 31e5d9a6-7302-4eec-baeb-d6294c422817 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion S.; Rudi´ c, S.; Parker, S
Reference 47
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Observation 7d0dcda0-fcb3-48dc-843b-fd37ff2abd58 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set.Phys
Reference 48
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Observation a3163911-fc77-449f-9cdc-90caa5115b6b · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion From ultrasoft pseu- dopotentials to the projector augmented-wave method.Phys
Reference 49
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Observation 82769c96-542d-4b59-aa3f-faf03162bab9 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Efficiency of ab- initio total energy calculations for metals and semiconductors using a plane-wave basis set
Reference 50
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Observation 81fda0d0-f027-4581-9ba0-f064d9c0f853 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Ab initio molecular dy- namics for liquid metals.Phys
Reference 51
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Observation e5f644d8-f7b2-44e3-8472-ab048485b3e5 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion P.; Burke, K.; Ernzerhof, M
Reference 52
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Observation 0d9ce319-58e4-46ae-9fa5-56464cdebaa3 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Effect of the damping function in dispersion corrected density functional theory.J
Reference 53
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Observation b73aeb4b-ca55-490a-a3bf-27a522bb70cf · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion A consistent and accurate ab initio parametriza- tion of density functional dispersion correction (DFT-D) for the 94 elements H-Pu.J
Reference 54
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Observation eac36811-99cb-4aa9-bd7c-2142ea13536d · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion High intrinsic proton conduction in cerium(IV) metal-organic framework constructed by bromine-grafted terephthalic acid.J
Reference 55
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Observation f148cffe-b616-434e-a9eb-db0f2692739b · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion H.; Von Dreele, R
Reference 56
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Observation 0abf7f64-5526-4c03-89a6-baf43441b67d · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Unresolved cited work
Reference 57
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Observation a0b4393d-e6b2-4ce5-8d8e-a76c4632aa8c · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion K.; Kancharlapalli, S.; Mor, J.; Armstrong, J.; Sen, D
Reference 58
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Observation 6284063b-75ca-423a-8217-561f428fd404 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion E.; Rey, F.; Jord´ a, J
Reference 59
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Observation 4469ca21-1f0b-4f0a-b6b1-a8555de47b61 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion K.; Ramirez-Cuesta, A
Reference 60
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Observation 2948c3d8-b434-4646-ab3b-5c7fb3ba577e · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Anal- ysis and refinement of host–guest interactions in metal–organic frameworks.Acc
Reference 61
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Observation 23c36f70-f778-4ff6-8379-b1baabf0e639 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion K.; Thomsen, M
Reference 62
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Observation 9b430b3e-ac23-4ba2-89c2-565369cda1d6 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Lattice dynamics of metal-organic frameworks: Neutron inelas- tic scattering and first-principles calculations
Reference 63
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Observation 9e7d00ee-af36-4869-80ee-19b8d989b399 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Benchmarking univer- sal machine learning interatomic potentials for rapid analysis of inelastic neutron scattering data.Mach
Reference 64
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Observation ef850df0-55ed-4358-9f49-47db58d5ccd1 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion K.; Kancharlapalli, S.; Mor, J.; Armstrong, J.; Sen, D
Reference 65
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Observation afb9a0a7-8e4c-4dfd-830b-fa2dd382c81a · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion E.; Cheng, Y.; Daemen, L
Reference 66
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Observation 6f5d76ca-cb72-439c-9294-3eb3ef11cb8a · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion E.; Fern´ andez-Catal´ a, J.; Cheng, Y.; Daemen, L.; Ramirez-Cuesta, A
Reference 67
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Observation 99652b48-482e-4ad4-85bd-632ee49b0d6f · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion J.; Lindman, A.; Ekl¨ of- ¨Osterberg, C.; Karlsson, M.; Parker, S
Reference 68
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Observation 3309f917-410e-4b46-a174-b803921b6348 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Structural, vibrational, and quasi- particle properties of the Peierls semiconduc- tor BaBiO 3: A hybrid functional and self- consistent GW+ vertex-corrections study.Phys
Reference 69
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Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion B.; Ramirez-Cuesta, A
Reference 70
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Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Unresolved cited work
Reference 71
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Observation d74b1f80-dcff-457b-bdd8-7c1df3a0306c · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion 3D negative thermal expan- sion in orthorhombic MIL-68 (In).Chem
Reference 72
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Observation 793ef8c8-f00a-4788-a287-7919c82f641f · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion J.; Peterson, V
Reference 73
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Observation 6729ab8b-4ecd-4cc1-babe-512c4a0433f4 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion L.; Brown, C
Reference 74
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Observation be9aa078-ac26-4dcf-b844-4c308d9fd7fa · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Unresolved cited work
Reference 75
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Observation 6b0bb802-1965-4bf2-a68c-2b7b31eff07a · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion T.; Zhou, H.-C
Reference 76
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Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Imaging the dy- namic influence of functional groups on metal- organic frameworks.Nat
Reference 77
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Observation 411acf6f-b02b-4f31-961c-ae62b6af8a49 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion A.; Smit, B.; Ranocchiari, M
Reference 78
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Observation 91ef890d-19c4-40f5-b941-70d56b830c5b · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Unresolved cited work
Reference 79
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Observation 31c00daa-130e-4300-8ce5-e9baa6c76bd4 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion C.; van Beek, W.; Marshall, K.; Pet- titi, I.; Latini, A.; D’Angelo, P
Reference 80
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Observation 8026de96-b541-45cf-9550-4f3984e8b3d5 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion G.; Armstrong, A
Reference 81
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Observation 179a5f89-3132-4199-93d1-6597bb7647b3 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion S.; Gao, M.-Y.; G´ andara, F.; Wang, K.; Tavani, F.; Zhu, H.; Proserpio, D
Reference 82
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Observation c06d0c3f-4ed5-4f2d-9961-2a13f8a772e4 · outbound
Data-driven Design of Metal-Organic Frameworks with Tunable Negative Thermal Expansion Explor- ing the Methane to Methanol Oxidation over Iron and Copper Sites in Metal–Organic Frame- works.Catalysts2023,13
Reference 83
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