<p>Current models for the growth of Fennoscandia, including the eastern part of the Sveconorwegian Province, are largely based on U–Pb data and do not discriminate between juvenile and reworked crust. Here we present new combined U–Pb and Hf isotopic data, from the Eastern Segment and the Idefjorden terrane of the Sveconorwegian Province, and suggest a revised model of crustal growth. Most of the crystalline basement in this part of the shield formed by mixing of a 2.1–1.9 Ga juvenile component and Archaean crust. Archaean reworking decreases between 1.9 and 1.7 Ga and a mixed Svecofennian crustal reservoir is generated. Succeeding magma...
The southern Finnish Lapland area in the central part of the Fennoscandian shield is a geologically ...
The Sveconorwegian orogeny encompasses magmatic, metamorphic and deformational events between ca. 11...
The Sveconorwegian orogen represents a branch of Grenville-age (~1250–950 Ma) orogenic belts that fo...
Current models for the growth of Fennoscandia, including the eastern part of the Sveconorwegian Prov...
Magmatism between 1.3 and 0.9 Ga at the southwestern margin of Fennoscandia, comprising mainly grani...
Magmatism between 1.3 and 0.9 Ga at the southwestern margin of Fennoscandia, comprising mainly grani...
The sources of igneous rocks in the continental crust are elusive, but they may be traced by radioge...
Laser ablation ICPMS U–Pb and Lu–Hf isotope data on granitic-granodioritic gneisses of the Precambri...
To understand the growth of continental crust, the balance between juvenile mantle derived extractio...
The results of a laser ablation microprobe–inductively coupled plasma mass spectrometry Lu–Hf isotop...
Constraints on the composition of the depleted mantle Sm–Nd and Lu–Hf crust formation ages have a lo...
Constraints on the composition of the depleted mantle Sm–Nd and Lu–Hf crust formation ages have a lo...
Several orogenies have shaped the bedrock of southern Sweden. While mafic intrusions represent signi...
The Svecofennian Domain of the Fennoscandian Shield constitutes a considerable volume of Palaeoprote...
To understand the growth of continental crust, the balance between juvenile mantle derived extractio...
The southern Finnish Lapland area in the central part of the Fennoscandian shield is a geologically ...
The Sveconorwegian orogeny encompasses magmatic, metamorphic and deformational events between ca. 11...
The Sveconorwegian orogen represents a branch of Grenville-age (~1250–950 Ma) orogenic belts that fo...
Current models for the growth of Fennoscandia, including the eastern part of the Sveconorwegian Prov...
Magmatism between 1.3 and 0.9 Ga at the southwestern margin of Fennoscandia, comprising mainly grani...
Magmatism between 1.3 and 0.9 Ga at the southwestern margin of Fennoscandia, comprising mainly grani...
The sources of igneous rocks in the continental crust are elusive, but they may be traced by radioge...
Laser ablation ICPMS U–Pb and Lu–Hf isotope data on granitic-granodioritic gneisses of the Precambri...
To understand the growth of continental crust, the balance between juvenile mantle derived extractio...
The results of a laser ablation microprobe–inductively coupled plasma mass spectrometry Lu–Hf isotop...
Constraints on the composition of the depleted mantle Sm–Nd and Lu–Hf crust formation ages have a lo...
Constraints on the composition of the depleted mantle Sm–Nd and Lu–Hf crust formation ages have a lo...
Several orogenies have shaped the bedrock of southern Sweden. While mafic intrusions represent signi...
The Svecofennian Domain of the Fennoscandian Shield constitutes a considerable volume of Palaeoprote...
To understand the growth of continental crust, the balance between juvenile mantle derived extractio...
The southern Finnish Lapland area in the central part of the Fennoscandian shield is a geologically ...
The Sveconorwegian orogeny encompasses magmatic, metamorphic and deformational events between ca. 11...
The Sveconorwegian orogen represents a branch of Grenville-age (~1250–950 Ma) orogenic belts that fo...