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Search 3,721 documents across 34 fields — every claim tier-rated by evidence

3,721 Documents 34 Sections 43,625 Citations 34,852 Keywords Indexed 4 Evidence Tiers

3,633 are the core, quality-scored corpus (34 lettered sections — see How We Work); the remaining 88 are cross-corpus synthesis documents (68 InterDocs, 12 Connections, 8 Theories) also indexed here.

3,692 results for "G protein" — page 138 of 185

Q_4_28 Speculative Cosmology & Physics

Q_4_28 — Tachyon Physics: Theoretical Possibility

Tachyons are hypothetical particles that travel faster than the speed of light, first given rigorous theoretical treatment by Gerald Feinberg of Columbia University in 1967. The concept builds on a peculiar feature of sp

tachyon faster-than-light imaginary mass causality Feinberg superluminal
Q_4_07 Verified Cosmology & Physics

Q_4_07 — Entropy: Order, Disorder, and the Arrow of Time

Entropy is one of the most fundamental and far-reaching concepts in all of physics — a quantity that measures the number of microscopic configurations (microstates) consistent with a system's macroscopic properties (macr

entropy thermodynamics second law Boltzmann Clausius arrow of time
Q_4_25 Verified Cosmology & Physics

Q_4_25 — Time Crystals: Wilczek and Experimental Realization

A time crystal is a phase of matter that spontaneously breaks time-translation symmetry, exhibiting periodic motion in its ground state or steady state without energy input — the temporal analogue of how ordinary crystal

time crystal Wilczek symmetry breaking discrete time crystal Floquet periodicity
Q_4_23 Verified Cosmology & Physics

Q_4_23 — Chaos Theory and Nonlinear Dynamics: Deterministic Unpredictability and Complex Systems

Chaos theory is the branch of mathematics and physics studying deterministic systems whose long-term behavior is effectively unpredictable due to sensitive dependence on initial conditions — popularly known as the "butte

chaos theory nonlinear dynamics butterfly effect Lorenz attractor strange attractor fractal
Q_4_11 Verified Cosmology & Physics

Q_4_11 — Acoustics: Sound Physics, Resonance, and Wave Phenomena

Acoustics is the science of sound — mechanical pressure waves propagating through matter (gases, liquids, solids). Unlike electromagnetic waves, sound requires a medium and cannot travel through vacuum. Sound is characte

acoustics sound pressure wave frequency wavelength resonance
Q_4_26 Verified Cosmology & Physics

Q_4_26 — Bose-Einstein Condensates: Physics and Applications

A Bose-Einstein condensate (BEC) is a state of matter formed when a gas of bosons (particles with integer spin) is cooled to temperatures near absolute zero — typically below 1 microkelvin ($10^{-6}$ K) — causing a macro

Bose-Einstein condensate BEC superfluidity quantum gas laser cooling Cornell
Q_4_32 Verified Cosmology & Physics

Q_4_32 — The Fundamental Constants: Physics, Life, and Mathematics

The universe runs on numbers — and not arbitrary ones. A small set of fundamental constants, mostly dimensionless, determines every property of matter, energy, space, and time. Change any of them by a fraction and atoms

fundamental constants physical constants CODATA 2022 speed of light Planck constant gravitational constant
Q_4_29 Verified Cosmology & Physics

Q_4_29 — Neutrino Mass and Oscillation Discovery

The discovery that neutrinos have mass — confirmed through the observation of neutrino oscillations — ranks among the most important developments in particle physics since the establishment of the Standard Model, because

neutrino oscillation mass flavor Super-Kamiokande SNO
Q_4_10 Verified Cosmology & Physics

Q_4_10 — Fluid Dynamics: Turbulence, Navier-Stokes, and the Millennium Problem

Fluid dynamics is the study of the motion of fluids (liquids and gases) — a branch of physics with applications spanning aeronautics, meteorology, oceanography, astrophysics, cardiovascular medicine, chemical engineering

fluid dynamics Navier-Stokes equations turbulence Reynolds number viscosity laminar flow
Q_2_13 Verified Cosmology & Physics

Q_2_13 — Interstellar Medium, Dust, and Nebulae

The space between stars is far from empty — the interstellar medium (ISM) is a complex, dynamic ecosystem of gas, dust, magnetic fields, and cosmic rays that pervades galaxies and plays a central role in stellar birth, d

interstellar medium ISM interstellar dust nebula emission nebula planetary nebula
Q_2_12 Verified Cosmology & Physics

Q_2_12 — Cosmic Nucleosynthesis and Primordial Helium Abundance

Big Bang nucleosynthesis (BBN) — the formation of the lightest elements during the first ~20 minutes after the Big Bang — stands as one of the most remarkable quantitative successes of modern cosmology. With only one fre

Big Bang nucleosynthesis BBN primordial nucleosynthesis helium abundance deuterium abundance lithium problem
Q_2_09 Verified Cosmology & Physics

Q_2_09 — Binary Star Systems and X-Ray Sources

Most stars in the Milky Way exist in binary or multiple-star systems — estimates range from ~50% for solar-type stars to >70% for massive O/B stars. Binary star interactions drive some of the most energetic phenomena in

binary stars X-ray binary Roche lobe accretion disk mass transfer neutron star
Q_2_17 Credible Cosmology & Physics

Q_2_17 — Fermi Paradox Solutions Comprehensive

The Fermi Paradox — named after physicist Enrico Fermi's 1950 lunchtime remark "Where is everybody?" — captures the apparent contradiction between the high probability of extraterrestrial civilizations (given the ~200–40

Fermi paradox Drake equation Great Filter rare earth zoo hypothesis dark forest
Q_2_16 Verified Cosmology & Physics

Q_2_16 — White Dwarfs, Type Ia Supernovae, and Standard Candles

White dwarfs — the remnant cores of low- and intermediate-mass stars (initial mass < ~8 M☉, ~97% of all stars) — are dense objects supported against gravitational collapse by electron degeneracy pressure, with typical ma

white dwarf Type Ia supernova standard candle Chandrasekhar limit electron degeneracy pressure carbon-oxygen white dwarf
Q_2_02 Verified Cosmology & Physics

Q_2_02 — Neutron Stars, Pulsars, and Extreme Physics

Neutron stars are the collapsed remnants of massive stars, packing 1.4 to approximately 2.1 solar masses into a sphere roughly 20 kilometers across — reaching densities of 10¹⁷ kg/m³, where a teaspoon of material would w

neutron stars pulsars magnetars kilonova Jocelyn Bell Burnell nuclear density
Q_2_04 Verified Cosmology & Physics

Q_2_04 — Stellar Evolution: The Life Cycle of Stars

Stars are born in collapsing molecular clouds, live by nuclear fusion for millions to trillions of years, and die in ways determined almost entirely by their initial mass. Low-mass stars (< 8 M☉) shed their outer layers

stellar evolution main sequence red giant white dwarf supernova neutron star
Q_3_13 Verified Cosmology & Physics

Q_3_13 — Interstellar Objects: 'Oumuamua, Borisov, and Interstellar Visitors

Interstellar objects (ISOs) are bodies — asteroids, comets, or other macroscopic objects — that originate in other star systems and pass through our solar system on unbound, hyperbolic trajectories. While the theoretical

interstellar object 'Oumuamua Borisov 1I 2I ISO
Q_3_01 Verified Cosmology & Physics

Q_3_01 — The Fermi Paradox & Drake Equation

Enrico Fermi's 1950 lunch question — "Where is everybody?" — remains one of the deepest unanswered questions in science. The galaxy is ~13.6 billion years old, contains ~100–400 billion stars, and (as we now know from Ke

Fermi paradox Drake equation Great Filter Zoo hypothesis Dark Forest SETI
Q_3_15 Verified Cosmology & Physics

Q_3_15 — Icy Moons: Europa, Titan, Enceladus, and Subsurface Oceans

Among the most transformative discoveries of planetary science in the past three decades is the realization that several moons of the outer solar system — Europa (Jupiter), Enceladus (Saturn), Titan (Saturn), and Ganymed

icy moon Europa Titan Enceladus Ganymede subsurface ocean
Q_3_08 Verified Cosmology & Physics

Q_3_08 — Planetary Formation and Protoplanetary Disks

Planets form within protoplanetary disks — rotationally supported structures of gas and dust orbiting newly formed stars, with typical masses of 0.1–10% of the stellar mass, radii of 10–1000 AU, and lifetimes of ~1–10 mi

protoplanetary disk planet formation core accretion disk instability planetesimal pebble accretion