Cretaceous
The final period of the Mesozoic, ending in mass extinction.
James St. John · CC BY 2.0
The Cretaceous was the third and final chapter of the Mesozoic Era, spanning from roughly 143.1 to 66 million years ago. It holds the record as the longest period in the entire Phanerozoic, lasting about 77.1 million years. Its name comes from the Latin *creta* ("chalk"), a rock type abundant in deposits from the later part of the period, and it is often abbreviated as "K" after the German word *Kreide*. The climate was generally warm, leading to high sea levels that created many shallow inland seas. These waters teemed with now-extinct marine reptiles, ammonites, and rudists, while dinosaurs continued to dominate the land. The world was mostly ice-free, though brief glaciations may have occurred during the cooler early half, and forests stretched all the way to the poles.
Many modern groups of organisms trace their origins back to the Cretaceous. New mammal and bird lineages appeared, including the earliest relatives of placentals and marsupials (Eutheria and Metatheria), with the first crown-group birds emerging near the period’s end. Teleost fish, the most diverse group of living vertebrates, kept diversifying, and their most varied subgroup, Acanthomorpha, arose during this time. Flowering plants first appeared in the Early Cretaceous and rapidly diversified, becoming the dominant plant group by the period’s close, coinciding with the decline and extinction of many widespread gymnosperms. The Cretaceous, and the entire Mesozoic, ended with the Cretaceous–Paleogene extinction event—a major mass extinction that wiped out non-avian dinosaurs, pterosaurs, and large marine reptiles. This event is widely attributed to a large asteroid impact that created the Chicxulub crater in the Gulf of Mexico. The boundary is marked by the abrupt Cretaceous–Paleogene (K–Pg) boundary, a geologic signature tied to the extinction.
**Etymology and history** The Cretaceous was first defined as a separate period in 1822 by Belgian geologist Jean d'Omalius d'Halloy, who called it the *Terrain Crétacé* based on strata in the Paris Basin. He named it for the extensive chalk beds (calcium carbonate from marine invertebrate shells, mainly coccoliths) found in the Upper Cretaceous of Western Europe. The twofold division of the period was introduced by Conybeare and Phillips in 1822. In 1840, Alcide d'Orbigny split the French Cretaceous into five stages: Neocomian, Aptian, Albian, Turonian, and Senonian, later adding the Urgonian (between Neocomian and Aptian) and the Cenomanian (between Albian and Turonian).
**Geology**
**Subdivisions** The Cretaceous is divided into the Early and Late Cretaceous epochs (or Lower and Upper Cretaceous series). Older literature sometimes splits it into three series: Neocomian (lower/early), Gallic (middle), and Senonian (upper/late). A worldwide subdivision into 12 stages, all based on European stratigraphy, is now standard, though many regions still use local alternatives. From youngest to oldest, the subdivisions are:
**Boundaries** The lower boundary of the Cretaceous is not yet defined, making the Jurassic–Cretaceous boundary the only system boundary without a Global Boundary Stratotype Section and Point (GSSP). Defining it has been difficult due to strong regional differences in biostratigraphic markers and a lack of chemostratigraphic events like isotope excursions. Calpionellids—planktonic protists with urn-shaped calcitic tests that were briefly abundant from the latest Jurassic to earliest Cretaceous—are considered promising candidates. The first appearance of *Calpionella alpina*, at the base of the Alpina subzone, has been proposed as the boundary definition. Another working definition has been the first appearance of the ammonite *Strambergella jacobi* (formerly *Berriasella*), but this does not always align with *C. alpina*. The International Commission on Stratigraphy officially considers the boundary to be about 145 million years ago, though U-Pb geochronology suggests estimates as young as 140 million years.
The upper boundary is sharply defined by a worldwide iridium-rich layer linked to the Chicxulub impact, whose boundaries encircle parts of the Yucatán Peninsula and extend into the Gulf of Mexico. This layer dates to 66.043 million years ago. The impact may have occurred at the end of a gradual decline in biodiversity during the Maastrichtian age. It caused the extinction of three-quarters of Earth’s plant and animal species, creating the sharp K–Pg boundary. Biodiversity took a long time to recover, despite likely abundant vacant ecological niches. However, the severity of the extinction varied across different groups.
- Duration
- ~77.1 million years
Lore & Background
The Cretaceous was first defined as a separate period by Belgian geologist Jean d'Omalius d'Halloy in 1822 as the Terrain Crétacé, using strata in the Paris Basin and named for the extensive beds of chalk. The twofold division of the Cretaceous was implemented by Conybeare and Phillips in 1822. Alcide d'Orbigny in 1840 divided the French Cretaceous into five étages: the Neocomian, Aptian, Albian, Turonian, and Senonian, later adding the Urgonian and the Cenomanian. The lower boundary of the Cretaceous is currently undefined, and the Jurassic–Cretaceous boundary is the only system boundary to lack a defined Global Boundary Stratotype Section and Point. The first appearance of Calpionella alpina, coinciding with the base of the eponymous Alpina subzone, has been proposed as the definition of the base of the Cretaceous.
Reader's Guide
The Cretaceous was a period with a relatively warm climate, resulting in high eustatic sea levels that created numerous shallow inland seas. These oceans and seas were populated with now-extinct marine reptiles, ammonites and rudists; while on land, dinosaurs continued to dominate. The world was largely ice-free, although there is some evidence of brief periods of glaciation during the cooler first half. During the Early Cretaceous, flowering plants appeared and began to rapidly diversify, becoming the dominant group of plants across the Earth by the end of the Cretaceous. New groups of mammals and birds appeared, including the earliest relatives of placentals and marsupials (Eutheria and Metatheria respectively), with the earliest crown group birds appearing towards the end of the Cretaceous. Teleost fish continued to diversify with the appearance of their most diverse subgroup Acanthomorpha. The Cretaceous ended with the Cretaceous–Paleogene extinction event, in which many groups, including non-avian dinosaurs, pterosaurs, and large marine reptiles, died out. The end of the Cretaceous is defined by the abrupt Cretaceous–Paleogene boundary (K–Pg boundary), a geologic signature associated with the mass extinction that lies between the Mesozoic and Cenozoic Eras.
Did You Know?
- The Cretaceous is the ninth and longest geological period of the entire Phanerozoic, lasting around 77.1 million years.
- The name 'Cretaceous' is derived from the Latin 'creta', meaning 'chalk', which is abundant in deposits from the latter half of the period.
- The Cretaceous is usually abbreviated K, for its German translation Kreide.
- The lower boundary of the Cretaceous is the only system boundary in the Phanerozoic to lack a defined Global Boundary Stratotype Section and Point (GSSP).
- The Cretaceous–Paleogene boundary is marked by an iridium-rich layer found worldwide, dated at 66.043 million years ago.
A Name Carved in Chalk
The Cretaceous takes its name from the Latin word creta, meaning chalk, a nod to the extensive beds of calcium carbonate deposited by the shells of marine invertebrates, principally coccoliths, found in the upper Cretaceous of Western Europe. Belgian geologist Jean d'Omalius d'Halloy first delineated it as a distinct geological period in 1822, calling it Terrain Crétacé based on strata in the Paris Basin. The period is commonly abbreviated K, drawn from the German word Kreide. Spanning from about 143.1 to 66 million years ago, the Cretaceous stands as the third and final period of the Mesozoic Era. At approximately 77.1 million years in length, it also claims the title of the ninth and longest geological period across the entire Phanerozoic. Its internal structure is divided into Early and Late Cretaceous epochs, or Lower and Upper Cretaceous series, with a worldwide framework of twelve stages all originating from European stratigraphy, though local subdivisions persist in various regions.
A Warm World of Shallow Seas
The Cretaceous unfolded under a notably warm climate that drove eustatic sea levels to heights producing countless shallow inland seas across the continents. These vast marine environments teemed with now-extinct creatures: marine reptiles patrolled the waters alongside ammonites and rudists, while on land the dinosaurs maintained their unchallenged dominance. The planet was largely free of ice, though some evidence points to brief glaciation episodes during the cooler first half of the period. Forests stretched all the way to the poles, a testament to the mild global temperatures. The lower boundary of the Cretaceous remains uniquely problematic in stratigraphy—it is the only system boundary in the entire Phanerozoic to lack a formally defined Global Boundary Stratotype Section and Point. The difficulty stems from the strong regionality of biostratigraphic markers and the absence of clear chemostratigraphic events such as isotope excursions that could anchor a global correlation. Calpionellids, enigmatic planktonic protists with urn-shaped calcitic tests, have been proposed as the most promising candidates for fixing this boundary, with the first appearance of Calpionella alpina serving as a leading candidate marker.
Cradle of Modern Life
Many of the dominant biological groups we recognize today trace their deepest origins to the Cretaceous. New lineages of mammals emerged during this interval, including the earliest relatives of placentals (Eutheria) and marsupials (Metatheria), while the earliest crown-group birds appeared toward the period's close. Among vertebrates, teleost fish—now the most diverse group of modern vertebrates—continued their diversification, with their most varied subgroup, Acanthomorpha, making its appearance during the Cretaceous. Perhaps the most transformative botanical event was the arrival of flowering plants in the Early Cretaceous. These angiosperms diversified at a remarkable pace, ultimately becoming the dominant plant group across the entire Earth by the period's end. This rise coincided with the decline and extinction of previously widespread gymnosperm groups. The Cretaceous thus represents a pivotal window in which the biological architecture of the modern world was assembled, laying the groundwork for the ecosystems that would follow the great extinction at the period's close.
The Day the World Ended
The Cretaceous, and with it the entire Mesozoic Era, was brought to an abrupt close by the Cretaceous–Paleogene extinction event. The upper boundary of the period is sharply defined by an iridium-rich layer found worldwide, dated at 66.043 million years ago, and widely attributed to the impact of a large asteroid that formed the Chicxulub crater, whose boundaries circumscribe parts of the Yucatán Peninsula and extend into the Gulf of Mexico. The catastrophe eliminated three-quarters of Earth's plant and animal species, wiping out non-avian dinosaurs, pterosaurs, and large marine reptiles. Species dependent on photosynthesis suffered the most, as atmospheric particles blocked solar energy and collapsed the food chains built upon phytoplankton and land plants. Herbivores that relied on those primary producers perished alongside them. Despite the severity of the event, extinction rates varied significantly between and within different clades. Earth's biodiversity required substantial time to recover, even though an abundance of vacant ecological niches presumably existed in the aftermath.
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Frequently Asked Questions
How does the Cretaceous end?
The period was brought to a close by the Cretaceous–Paleogene extinction event, a mass extinction widely attributed to the impact of a large asteroid. This catastrophic event eliminated the non-avian dinosaurs and roughly three-quarters of all species on Earth.
Why is the Cretaceous important in geology?
As the final chapter of the Mesozoic Era, it marks the last interval in which dinosaurs dominated terrestrial ecosystems before the mass extinction reshaped life on the planet. It also provides a key window for studying the formation of the vast chalk and limestone deposits that define much of the period's rock record.
Where does the Cretaceous sit in the geological timeline?
It is the last of the three periods that make up the Mesozoic Era, following the Triassic and the Jurassic. Once the Cretaceous ends, the Cenozoic Era begins, ushering in the age of mammals.
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