RESEARCH BASE

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.

855 results for "Iron Age" — page 21 of 43

ZF_2_07 Verified Oceanography

ZF_2_07 — Marine Microbiology and Plankton

Marine microorganisms — bacteria, archaea, protists, viruses, and microscopic algae — constitute the invisible foundation of ocean life, driving global biogeochemical cycles, producing roughly half of the world's oxygen,

marine microbiology plankton phytoplankton zooplankton cyanobacteria diatom
ZF_2_14 Verified Oceanography

ZF_2_14 — Marine Microbiology: Deep-Sea Viruses and Bacterial Ecology

The deep ocean harbors the largest and most diverse microbial ecosystem on Earth — a vast realm of bacteria, archaea, and viruses that drive global biogeochemical cycles, recycle organic matter, and sustain life in condi

marine microbiology deep-sea viruses bacteriophage marine bacteria viral shunt biogeochemical cycling
ZF_3_09 Verified Oceanography

ZF_3_09 — Ocean Currents and Human Migration Patterns

Ocean currents have shaped human migration, trade, and cultural exchange throughout prehistory and history — functioning as both highways and barriers that profoundly influenced which populations could reach which coastl

ocean currents human migration maritime dispersal Kuroshio Current Gulf Stream Humboldt Current
ZF_3_06 Verified Oceanography

ZF_3_06 — Polynesian and Indigenous Ocean Knowledge

Indigenous and Pacific Islander communities have accumulated millennia of empirical ocean knowledge — encompassing navigation, marine ecology, fisheries management, weather prediction, tidal patterns, and ocean-land rela

traditional ecological knowledge TEK Polynesian voyaging Mau Piailug Hokule'a Polynesian Voyaging Society
ZF_5_18 Credible Oceanography

ZF_5_18 — Wave & Tidal Energy

Wave and tidal energy — the extraction of electrical power from ocean surface waves and gravitational tidal flows — represent a vast but largely untapped renewable energy resource: the International Energy Agency (IEA) e

wave energy tidal energy marine renewable ocean power Pelamis tidal barrage
ZF_5_09 Verified Oceanography

ZF_5_09 — Whale Falls: Deep-Sea Decomposition and Chemosynthetic Ecosystems

Whale falls — the carcasses of large cetaceans that sink to the deep ocean floor — are among the most remarkable ecosystems in the sea, transforming the nutrient-poor desert of the abyssal plains into oases of biological

whale fall deep sea decomposition chemosynthesis sulfide bone-eating worm
ZF_5_05 Verified Oceanography

ZF_5_05 — UNCLOS and Ocean Governance: Maritime Law, EEZ, and High Seas

The United Nations Convention on the Law of the Sea (UNCLOS), adopted in 1982 and entering into force in 1994, is the comprehensive legal framework governing all uses of the world's oceans — often called the "Constitutio

UNCLOS law of the sea maritime law exclusive economic zone EEZ continental shelf
ZF_5_06 Credible Oceanography

ZF_5_06 — Ocean Energy: Tidal Power, Wave Energy, and OTEC

Ocean energy encompasses a family of renewable energy technologies that harvest the ocean's vast stores of kinetic, thermal, and chemical energy — including tidal power (predictable tidal flow and range), wave energy (wi

ocean energy tidal power wave energy tidal barrage tidal stream OTEC
ZF_5_14 Verified Oceanography

ZF_5_14 — Marine Invertebrate Venoms: Cone Snails, Box Jellyfish, and Blue-Ringed Octopus

The oceans harbor an extraordinary diversity of venomous organisms — from the microscopic nematocysts (stinging cells) of cnidarians to the sophisticated venom injection systems of cone snails, blue-ringed octopuses, and

marine venom cone snail Conus conotoxin box jellyfish Chironex fleckeri
ZF_1_02 Verified Oceanography

ZF_1_02 — Tidal Science: Lunar Cycles, Tidal Locking, and Tidal Energy

Tides — the rhythmic rise and fall of ocean surfaces — are among the most predictable natural phenomena on Earth, driven primarily by the gravitational attraction of the Moon (accounting for ~68% of tidal forcing) and th

tidal force tidal locking spring tide neap tide tidal bore tidal energy
ZF_1_04 Verified Oceanography

ZF_1_04 — Ocean-Climate Coupling: Paleoceanography

The ocean is Earth's primary climate regulator — absorbing ~93% of the excess heat trapped by greenhouse gases and ~30% of anthropogenic CO₂, storing 50 times more carbon than the atmosphere, and driving glacial-intergla

paleoceanography ice age Milankovitch cycles foraminifera oxygen isotope ocean carbon pump
Z_5_10 Verified Molecular Biology

Z_5_10 — Genome Editing Beyond CRISPR: TALENs, Base Editors, Prime Editors, and Next-Generation Tools

While CRISPR-Cas9 (covered in Z_1_02) dominates the genome editing landscape, it is neither the first nor the only precision genome editing technology. The field began with zinc finger nucleases (ZFNs) in the early 2000s

genome editing TALENs zinc finger nucleases ZFN base editing prime editing
Z_5_09 Verified Molecular Biology

Z_5_09 — Single-Cell Genomics: Profiling Biology One Cell at a Time

Single-cell genomics — the set of technologies that enable the measurement of DNA sequences, RNA expression, protein levels, or epigenetic states in individual cells rather than bulk populations — has revolutionized biol

single-cell genomics scRNA-seq Human Cell Atlas cell atlas tumor heterogeneity UMAP
Z_5_23 Verified Molecular Biology

Z_5_23 — Gene Drives: CRISPR-Based Inheritance Manipulation and Ecological Engineering

A gene drive is a genetic engineering technology that biases inheritance in sexually reproducing organisms, causing a modified gene to spread through a population at rates far exceeding normal Mendelian inheritance (~50%

gene drive CRISPR mutagenic chain reaction malaria Anopheles population suppression
Z_3_14 Verified Molecular Biology

Z_3_14 — Behavioral Genetics and the Genetics of Aggression

Behavioral genetics investigates the relative contributions of genetic and environmental factors to variation in behavior — including aggression, impulsivity, risk-taking, anxiety, sociability, and cognitive traits. Twin

behavioral genetics aggression MAOA warrior gene serotonin dopamine
Z_3_07 Verified Molecular Biology

Z_3_07 — Gene Drive Technology

Gene drives are genetic systems that bias their own inheritance to spread through a population at rates exceeding normal Mendelian expectations (~50% → ~99% transmission). Natural selfish genetic elements (transposons, m

gene drive CRISPR gene drive selfish genetic element meiotic drive super-Mendelian inheritance Anopheles
Z_3_16 Verified Molecular Biology

Z_3_16 — Genomic Conflict and Selfish Genetic Elements

Selfish genetic elements (SGEs) — sequences of DNA that promote their own transmission at the expense of the host organism or other genes in the genome — reveal that the genome is not a cooperating community of genes but

selfish-genetic-elements genomic-conflict transposable-elements meiotic-drive gene-drive intragenomic-conflict
Z_3_13 Verified Molecular Biology

Z_3_13 — Horizontal Gene Transfer in Prokaryotes

Horizontal gene transfer (HGT) — the movement of genetic material between organisms outside of parent-to-offspring inheritance — is a dominant force shaping prokaryotic evolution, fundamentally challenging the traditiona

horizontal gene transfer HGT lateral gene transfer conjugation transformation transduction
Z_3_15 Credible Molecular Biology

Z_3_15 — Genetics of Intelligence: Polygenicity, GWAS, and the Heritability Debate

The genetics of intelligence — attempts to identify the specific genetic variants that influence individual differences in cognitive ability — represents one of the most complex and contentious areas in human genetics. H

intelligence IQ GWAS polygenicity heritability educational attainment
Z_2_21 Verified Molecular Biology

Z_2_21 — Epigenetic Aging Clocks

Epigenetic aging clocks are mathematical models that use patterns of DNA methylation at specific CpG dinucleotides across the genome to estimate an individual's biological age with remarkable accuracy — typically within

epigenetic clock DNA methylation biological age Horvath clock GrimAge aging