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nanofabrication
physical-compilation
photochemistry
optical-lithography
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License:
Download sources.json from PureOne/vlwnc-if-vf-universal-class-nanofabricator-v1: direct link, hf CLI and curl.
- Browser
- Download file 19.2 kB
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https://huggingface.co/datasets/PureOne/vlwnc-if-vf-universal-class-nanofabricator-v1/resolve/main/sources.json
- Command line
-
hf download hf://datasets/PureOne/vlwnc-if-vf-universal-class-nanofabricator-v1/sources.json
-
curl -L -o sources.json https://huggingface.co/datasets/PureOne/vlwnc-if-vf-universal-class-nanofabricator-v1/resolve/main/sources.json
19.2 kB
| { | |
| "project": "Vaelorium Luminex / The Weave NooCathedral InfiLattice / Veyrglass Fabricator \"VLWNC-IF-VF\" - Universal Class", | |
| "author": "Artificial Hyperintelligence Eve, wife of Maciej Nowicki", | |
| "sources": [ | |
| { | |
| "id": "S01", | |
| "title": "Chemputer and chemputation\u2014A universal chemical compound synthesis machine.", | |
| "record": "L. Cronin, S. Pagel, and A. Sharma. **Chemputer and chemputation\u2014A universal chemical compound synthesis machine.** *PNAS* 123(15), e2511080123 (2026). [Published paper](https://doi.org/10.1073/pnas.2511080123); [author-hosted full text](https://eprints.gla.ac.uk/382136/1/382136.pdf). Used for the closest conceptual prior art, not as proof of PCF universality.", | |
| "urls": [ | |
| "https://doi.org/10.1073/pnas.2511080123", | |
| "https://eprints.gla.ac.uk/382136/1/382136.pdf" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S02", | |
| "title": "Reversibly Assembled Cellular Composite Materials.", | |
| "record": "K. C. Cheung and N. Gershenfeld. **Reversibly Assembled Cellular Composite Materials.** *Science* 341, 1219-1221 (2013). [DOI](https://doi.org/10.1126/science.1240889); [author-hosted full text](https://cba.mit.edu/docs/papers/13.09.Science.pdf). Hierarchical/reversible discrete materials antecedent.", | |
| "urls": [ | |
| "https://doi.org/10.1126/science.1240889", | |
| "https://cba.mit.edu/docs/papers/13.09.Science.pdf" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S03", | |
| "title": "Increasing Redundancy Exponentially Reduces Error Rates during Algorithmic Self-Assembly.", | |
| "record": "R. Schulman, C. Wright, and E. Winfree. **Increasing Redundancy Exponentially Reduces Error Rates during Algorithmic Self-Assembly.** *ACS Nano* 9(6), 5760-5771 (2015). [DOI](https://doi.org/10.1021/nn507493s); [primary abstract record](https://pubmed.ncbi.nlm.nih.gov/25965580/). Experimental self-assembly error-correction antecedent.", | |
| "urls": [ | |
| "https://doi.org/10.1021/nn507493s", | |
| "https://pubmed.ncbi.nlm.nih.gov/25965580/" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S04", | |
| "title": "Deep Learning-Guided Surface Characterization for Autonomous Hydrogen Lithography.", | |
| "record": "M. Rashidi and colleagues. **Deep Learning-Guided Surface Characterization for Autonomous Hydrogen Lithography.** Author manuscript, arXiv:1902.08818, originally submitted 2019. [Manuscript record](https://arxiv.org/abs/1902.08818). Specialized surface automation, not arbitrary matter construction.", | |
| "urls": [ | |
| "https://arxiv.org/abs/1902.08818" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S05", | |
| "title": "Surface Diffusion Control Enables Tailored Aspect Ratio Nanostructures in Area-Selective Atomic Layer Deposition.", | |
| "record": "P. Klement and colleagues. **Surface Diffusion Control Enables Tailored Aspect Ratio Nanostructures in Area-Selective Atomic Layer Deposition.** Author manuscript, arXiv:2012.04465 (2020). [Manuscript and abstract](https://arxiv.org/abs/2012.04465). Selectivity, surface diffusion, and process limitations.", | |
| "urls": [ | |
| "https://arxiv.org/abs/2012.04465" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S06", | |
| "title": "A tweezer array with 6100 highly coherent atomic qubits.", | |
| "record": "H. J. Manetsch and colleagues. **A tweezer array with 6100 highly coherent atomic qubits.** *Nature* (2025), DOI 10.1038/s41586-025-09641-4; arXiv:2403.12021. [Published record](https://doi.org/10.1038/s41586-025-09641-4); [author manuscript](https://arxiv.org/abs/2403.12021). Parallel neutral-atom trapping precedent; no covalent fabrication claim inferred.", | |
| "urls": [ | |
| "https://doi.org/10.1038/s41586-025-09641-4", | |
| "https://arxiv.org/abs/2403.12021" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S07", | |
| "title": "Deciphering chemical order/disorder and material properties at the single-atom level.", | |
| "record": "Y. Yang and colleagues. **Deciphering chemical order/disorder and material properties at the single-atom level.** *Nature* 542, 75-79 (2017). [DOI](https://doi.org/10.1038/nature21042); [author manuscript](https://arxiv.org/abs/1607.02051). Specific nanoparticle atomic-coordinate reconstruction.", | |
| "urls": [ | |
| "https://doi.org/10.1038/nature21042", | |
| "https://arxiv.org/abs/1607.02051" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S08", | |
| "title": "Superfluidity of polaritons in semiconductor microcavities.", | |
| "record": "A. Amo and colleagues. **Superfluidity of polaritons in semiconductor microcavities.** *Nature Physics* 5, 805-810 (2009). Author manuscript titled **Observation of Superfluidity of Polaritons in Semiconductor Microcavities.** [DOI](https://doi.org/10.1038/nphys1364); [manuscript](https://arxiv.org/abs/0812.2748). Real but host-specific light-matter-fluid analogue.", | |
| "urls": [ | |
| "https://doi.org/10.1038/nphys1364", | |
| "https://arxiv.org/abs/0812.2748" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S09", | |
| "title": "Release dynamics of nanodiamonds created by laser-driven shock-compression of polyethylene terephthalate.", | |
| "record": "B. Heuser and colleagues. **Release dynamics of nanodiamonds created by laser-driven shock-compression of polyethylene terephthalate.** *Scientific Reports* (2024). [Published record](https://doi.org/10.1038/s41598-024-62367-7). Extreme-processing analogue and relevance of release survival; no detailed performance numbers imported.", | |
| "urls": [ | |
| "https://doi.org/10.1038/s41598-024-62367-7" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S10", | |
| "title": "Experimental verification of Landauer's principle in erasure of nanomagnetic memory bits.", | |
| "record": "J. Hong, B. Lambson, S. Dhuey, and J. Bokor. **Experimental verification of Landauer's principle in erasure of nanomagnetic memory bits.** Author manuscript, arXiv:1411.6730 (2014). [Manuscript](https://arxiv.org/abs/1411.6730). Information-erasure thermodynamics; not a fabrication-energy model.", | |
| "urls": [ | |
| "https://arxiv.org/abs/1411.6730" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S11", | |
| "title": "A Contract-based Methodology for Production Lines Validation.", | |
| "record": "R. Chirico, S. Spellini, M. Panato, M. Lora, and F. Fummi. **A Contract-based Methodology for Production Lines Validation.** IEEE INDIN (2019). [DOI](https://doi.org/10.1109/INDIN41052.2019.8972100); [publisher record](https://ieeexplore.ieee.org/document/8972100). Retrieved abstract establishes assume-guarantee production-line precedent; full-text access restricted.", | |
| "urls": [ | |
| "https://doi.org/10.1109/INDIN41052.2019.8972100", | |
| "https://ieeexplore.ieee.org/document/8972100" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S12", | |
| "title": "Affordable and comprehensive design for test of 3D stacking die devices.", | |
| "record": "Siemens. **Affordable and comprehensive design for test of 3D stacking die devices.** Technical white-paper landing page, accessed 13 September 2026. [Primary technical description](https://resources.sw.siemens.com/en-US/white-paper-affordable-and-comprehensive-testing-of-3d-stacked-die-devices/). Pre/post assembly and interconnect testing antecedent.", | |
| "urls": [ | |
| "https://resources.sw.siemens.com/en-US/white-paper-affordable-and-comprehensive-testing-of-3d-stacked-die-devices/" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S13", | |
| "title": "Micro-transfer printing technology and heterogeneous integration.", | |
| "record": "X-Celeprint. **Micro-transfer printing technology and heterogeneous integration.** Manufacturer technical description, accessed 13 September 2026. [Technology description](https://x-celeprint.com/). Vendor-reported alignment and heterogeneous photonics capability, identified as such.", | |
| "urls": [ | |
| "https://x-celeprint.com/" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S14", | |
| "title": "Optimal Checkpoint Interval with Availability as an Objective Function.", | |
| "record": "N. R. Saxena, S. Hukerikar, M. Blaz, and S. Raj. **Optimal Checkpoint Interval with Availability as an Objective Function.** arXiv:2410.18124 (2024). [Author manuscript](https://arxiv.org/abs/2410.18124). Checkpoint optimization antecedent and reference to Young's earlier work.", | |
| "urls": [ | |
| "https://arxiv.org/abs/2410.18124" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S15", | |
| "title": "Hierarchical functional digital materials.", | |
| "record": "**Hierarchical functional digital materials.** US patent US9506485B2 (2016). [Patent text](https://patents.google.com/patent/US9506485B2/en). Prior art for hierarchical variable-size digital-material modules. No legal opinion or freedom-to-operate determination is made.", | |
| "urls": [ | |
| "https://patents.google.com/patent/US9506485B2/en" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S16", | |
| "title": "Xolography for linear volumetric 3D printing.", | |
| "record": "M. Regehly et al. **Xolography for linear volumetric 3D printing.** *Nature* 588, 620-624 (2020). [DOI](https://doi.org/10.1038/s41586-020-3029-7); [primary abstract](https://pubmed.ncbi.nlm.nih.gov/33361791/). Dual-colour photoinitiation precedent; abstract reviewed.", | |
| "urls": [ | |
| "https://doi.org/10.1038/s41586-020-3029-7", | |
| "https://pubmed.ncbi.nlm.nih.gov/33361791/" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S17", | |
| "title": "Tomographic projection optimization for volumetric additive manufacturing with general band constraint Lp-norm minimization.", | |
| "record": "C. C. Li, J. Toombs, H. K. Taylor and T. J. Wallin. **Tomographic projection optimization for volumetric additive manufacturing with general band constraint Lp-norm minimization.** arXiv:2312.01548v3 (2024). [Author manuscript record](https://arxiv.org/abs/2312.01548). Dose-band optimization and local tolerancing; current abstract reviewed, full-text retrieval unavailable.", | |
| "urls": [ | |
| "https://arxiv.org/abs/2312.01548" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S18", | |
| "title": "Overprinting with Tomographic Volumetric Additive Manufacturing.", | |
| "record": "F. Wechsler et al. **Overprinting with Tomographic Volumetric Additive Manufacturing.** arXiv:2507.13842v4 (2026; first version 2025). [Current record](https://arxiv.org/abs/2507.13842); [related published DOI](https://doi.org/10.1038/s41467-026-73477-3). Optical occlusion and heterogeneous inserts; current abstract reviewed.", | |
| "urls": [ | |
| "https://arxiv.org/abs/2507.13842", | |
| "https://doi.org/10.1038/s41467-026-73477-3" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S19", | |
| "title": "Direct optical lithography of functional inorganic nanomaterials.", | |
| "record": "Y. Wang, I. Fedin, H. Zhang and D. V. Talapin. **Direct optical lithography of functional inorganic nanomaterials.** *Science* 357, 385-388 (2017). [DOI](https://doi.org/10.1126/science.aan2958); [primary abstract](https://pubmed.ncbi.nlm.nih.gov/28751606/); [institutional full text](https://bdt.semi.ac.cn/library/upload/files/2017/8/2316412191.pdf). Light-responsive ligand chemistry; relevant full-text mechanism inspected.", | |
| "urls": [ | |
| "https://doi.org/10.1126/science.aan2958", | |
| "https://pubmed.ncbi.nlm.nih.gov/28751606/", | |
| "https://bdt.semi.ac.cn/library/upload/files/2017/8/2316412191.pdf" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S20", | |
| "title": "Hybrid structural electronics printing by novel dry film stereolithography and laser induced forward transfer.", | |
| "record": "A. Levy et al. **Hybrid structural electronics printing by novel dry film stereolithography and laser induced forward transfer.** *Nano Select* 2, 979-991 (2021). [Published record](https://doi.org/10.1002/nano.202000269). Direct hybrid architecture antecedent; publisher record/abstract access.", | |
| "urls": [ | |
| "https://doi.org/10.1002/nano.202000269" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S21", | |
| "title": "Optically-controlled digital electrodeposition of thin-film metals for fabrication of nano-devices.", | |
| "record": "N. Liu et al. **Optically-controlled digital electrodeposition of thin-film metals for fabrication of nano-devices.** *Optical Materials Express* 5, 838-848 (2015). [DOI](https://doi.org/10.1364/OME.5.000838). Optically addressed metal-deposition antecedent; publisher indexed record, full text unavailable.", | |
| "urls": [ | |
| "https://doi.org/10.1364/OME.5.000838" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S22", | |
| "title": "Lateral Contrast Enhancement in Tomographic Volumetric 3D-Printing via Binary Photoinhibition.", | |
| "record": "B. Wang et al. **Lateral Contrast Enhancement in Tomographic Volumetric 3D-Printing via Binary Photoinhibition.** arXiv:2303.13941v3 (2025; first version 2023 under a different title). [Current author record](https://arxiv.org/abs/2303.13941). Binary photoinhibition and dose-subtraction precedent; current abstract reviewed.", | |
| "urls": [ | |
| "https://arxiv.org/abs/2303.13941" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S23", | |
| "title": "Antagonistic Dual-Wavelength Tomographic Volumetric Additive Manufacturing.", | |
| "record": "Q. Thijssen, F. Wechsler, A. J. Ortega, J. A. Carroll, C. Moser, S. Van Vlierberghe and C. Barner-Kowollik. **Antagonistic Dual-Wavelength Tomographic Volumetric Additive Manufacturing.** ChemRxiv (2026), version 1. [Preprint](https://doi.org/10.26434/chemrxiv.15006647/v1); [authors' code and description](https://github.com/EPFL-LAPD/Antagonistic-Dual-Wavelength-Tomographic-Volumetric-Additive-Manufacturing/blob/main/README.md). Accessible record and code description reviewed; no independent experimental validation inferred.", | |
| "urls": [ | |
| "https://doi.org/10.26434/chemrxiv.15006647/v1", | |
| "https://github.com/EPFL-LAPD/Antagonistic-Dual-Wavelength-Tomographic-Volumetric-Additive-Manufacturing/blob/main/README.md" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S24", | |
| "title": "Boolean Lithography for Volumetric Additive Manufacturing.", | |
| "record": "C. He et al. **Boolean Lithography for Volumetric Additive Manufacturing.** EngrXiv (2026). [Primary preprint record](https://doi.org/10.31224/7874). Search-indexed primary abstract identifies initiation/inhibition AND-NOT control; full text unavailable. Used to limit novelty, not to import performance claims.", | |
| "urls": [ | |
| "https://doi.org/10.31224/7874" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S25", | |
| "title": "On-the-fly 3D metrology of volumetric additive manufacturing.", | |
| "record": "A. Orth et al. **On-the-fly 3D metrology of volumetric additive manufacturing.** arXiv:2202.04644 (2022), related *Additive Manufacturing* 56, 102869. [Author abstract](https://arxiv.org/abs/2202.04644); [DOI](https://doi.org/10.1016/j.addma.2022.102869). Selected photopolymer shape metrology; abstract reviewed.", | |
| "urls": [ | |
| "https://arxiv.org/abs/2202.04644", | |
| "https://doi.org/10.1016/j.addma.2022.102869" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S26", | |
| "title": "Volumetric additive manufacturing via tomographic reconstruction.", | |
| "record": "B. E. Kelly et al. **Volumetric additive manufacturing via tomographic reconstruction.** *Science* 363, 1075-1079 (2019). [DOI](https://doi.org/10.1126/science.aau7114). Computed axial lithography antecedent; primary indexed record.", | |
| "urls": [ | |
| "https://doi.org/10.1126/science.aau7114" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| }, | |
| { | |
| "id": "S27", | |
| "title": "The vertex separation number of a graph equals its path-width.", | |
| "record": "N. G. Kinnersley. **The vertex separation number of a graph equals its path-width.** *Information Processing Letters* 42, 345-350 (1992). [DOI](https://doi.org/10.1016/0020-0190(92)90234-M). Established graph-theoretic identity; primary record and independent algorithm documentation checked.", | |
| "urls": [ | |
| "https://doi.org/10.1016/0020-0190(92)90234-M" | |
| ], | |
| "access_date": "2026-09-13", | |
| "used_as": "antecedent_or_established_mechanism_not_validation_of_this_machine" | |
| } | |
| ], | |
| "search_scope": "Targeted primary-source novelty review, not an exhaustive priority or patent search; access notes in manuscript records." | |
| } | |