README
PhysicsProvoker: Domain-Adaptive LoRA Fine-Tuning for Research-Depth Scientific Idea Provocation Mustafa M. Gebril | Under Review — submitted for publication, 2025 Fine-tunes small language models (Qwen3-0.6B – 8B) via QLoRA on curated arXiv physics abstracts to generate non-obvious, research-depth idea provocations. Introduces a hidden-bridge training objective and a Claude-judged novelty evaluation protocol.
Prompt: What’s a non-obvious way to think about quantum decoherence?
Quantum decoherence is often framed as the loss of coherence—a degradation caused by interaction with an environment. But consider instead that it encodes a phase transition in measurement structure: the system does not lose information; rather, it undergoes a structural reorganisation where classical correlations emerge through constructive interference between competing environmental channels. This reframing suggests asking: what determines which observables become ‘selected’ at decoherence timescales—not just thermal noise or coupling strength—but how the interplay between dissipation pathways and initial-state geometry preferentially amplifies certain measurement outcomes? Suggested experiment: measure two physical quantities simultaneously before and after decoherence; if one decays faster, ask whether the relative decay rates correlate with symmetry-breaking in the effective Hamiltonian.
Prompt: I’m stuck on the black hole information paradox. Help me see it differently.
Shift focus from “where does information go?” to “how do correlation structures adapt when they cross a regime where local Lorentzian geometry fails?” In classical relativity, causal connectivity breaks down at the singularity because curvature diverges. Quantum mechanically, correlations between infalling and outgoing modes may not respect standard causality across such singular regions. Try computing whether entanglement measures between early and late Hawking radiation remain finite under resummation schemes that regulate the singularity before taking limits toward zero area. The apparent paradox may dissolve into a question about which observables preserve causality under coarse-graining—not about retrieving lost data, but about which questions remain meaningful after crossing the threshold.
Prompt: Topological order in condensed matter—give me an unusual angle.
Your framework characterises topological order by asking which ground states are distinct under continuous deformations. What if you inverted the question: what happens if you deliberately block information flow at certain scales? Introduce quasi-periodic modulations that break translational symmetry but preserve discrete gauge freedom. Would topological phases survive only when information can still ‘leak’ through specific channels? If so, you could map those survival conditions back into your classification scheme as effective constraints on allowed phase transitions—turning a stability question into a channel-capacity question.