Independent Experimental Confirmation of Force-Line Photon Topology by the 2025 Supersolid Light Experiment – Robert J. Weber – November 21, 2025
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The 2025 supersolid-light experiment (CNR Nanotec / University of Pavia, published in Nature) that created a supersolid state of light in a semiconductor lattice was performed without knowledge of the force-line photon model (DOI 10.5281/zenodo.17667143). The observed freezing of photons into a rigid crystalline pattern while retaining superfluidity is precisely the mechanical locking of open force-line pairs when their latent electron/positron halves fall into phase-coherent topological wells. This constitutes an independent experimental confirmation of the pure-particle, topological nature of light and the elimination of wave-particle duality. The same topological mechanism that gives photons transient mass in the lattice produces the permanent gluon mass in pure Yang–Mills theory via line kinking (DOI 10.5281/zenodo.17619003). Video of the confirming experiment: https://www.youtube.com/watch?v=ZpM4h2c1DqM (0:38–1:12 lattice freeze)
2025年超固态光实验由CNR Nanotec与帕维亚大学合作完成,成果发表于《自然》(Nature)期刊。该实验在半导体晶格中制备出光的超固态,且实验开展时并未参考力线光子模型(DOI 10.5281/zenodo.17667143)。实验中观测到光子冻结为刚性晶体构型的同时保留超流性,这恰好对应开放力线对的机械锁定——当其潜在的电子/正电子组分落入相位相干拓扑阱中时。该结果为光的纯粒子性拓扑本质提供了独立实验验证,并证伪了波粒二象性。 在晶格中赋予光子瞬态质量的同一拓扑机制,还可通过力线扭结在纯杨-米尔斯(Yang–Mills)理论中产生胶子的静质量(DOI 10.5281/zenodo.17619003)。 该验证实验的相关视频片段:https://www.youtube.com/watch?v=ZpM4h2c1DqM(0:38–1:12 晶格冻结过程)



