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The Large Scale Structures

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The Large Scale Structures
Lowest price (incl. delivery)
14 299,00 JPY
Typical price1 019,05 PLN
Lowest (90 days)71,50 PLN
Offers6
Last updated6 zile în urmă
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2026-08-08 2026-08-15
Istoricul prețurilor
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2026-08-0884,99
2026-08-1571,50
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SP SpringerNatureLink Shop INT 14 299,00 JPY free 14 299,00 JPY Disponibil 11 ore în urmă View offer
SP Springer Nature Author 14 299,00 JPY free 14 299,00 JPY Disponibil 6 zile în urmă View offer
SP SpringerNatureLink Shop INT 99,99 USD 19,00 USD 118,99 USD Disponibil 16 ore în urmă View offer
SP SpringerNatureLink Shop INT 109,99 USD 25,00 USD 134,99 USD Disponibil 15 ore în urmă View offer
SP SpringerNatureLink Shop INT 109,99 USD 29,00 USD 138,99 USD Disponibil 15 ore în urmă View offer
SP SpringerNatureLink Shop INT 118,00 EUR 15,00 EUR 133,00 EUR Disponibil 15 ore în urmă View offer

Prețurile și disponibilitatea se pot modifica. Ultima actualizare: 08.08.2026 23:20.

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Dark Energy and Dark Matter are among the greatest mysteries in modern cosmology. The present work explores in depth how large cosmic structures can help us unveil the nature of these components of the Universe. One the one hand, it focuses on a signature that Dark Energy imprints on the Cosmic Microwave Background through its impact on the time-evolution of gravitational potentials: the integrated Sachs-Wolfe (iSW) effect. Another cosmological background, the Cosmic Infrared Background, is considered for the first time in the study of the iSW effect and demonstrated to be a highly efficient and promising tracer. Changing the perspective on the problem, the use of superstructures for iSW detection is then extensively reviewed: using precise solutions to Einstein’s general relativity equations, the full iSW effect is computed, especially due to the cosmic voids predicted by the theory. Using measurements from the most recent data, it is subsequently shown how the iSW probes the solidity of the cosmological standard model. On the topic of Dark Matter, an original study is presented, showing that temperature measurements of the intergalactic medium shed light on the nature of Dark Matter particles, providing the tightest constraints on their decay properties.

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