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RSK Infrastructure Framework

RSK Infrastructure Framework price (RIF)

Buying RSK Infrastructure Framework (RIF) on Bitpanda is easy, fast, and secure. Check the current RIF value and live chart in GBP and get to know more about RIF.

Buying RSK Infrastructure Framework (RIF) on Bitpanda is easy, fast, and secure. Check the current RIF value and live chart in GBP and get to know more about RIF.

€0.0766

€0.0018+2.42 %
€0.0018+2.42 %



This converter shows values for info only and doesn’t reflect actual transaction rates.

Last updated: 21/09/2026, 16:30:00

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Figures shown refer to the past, and are based on gross performance. Past performance is not a reliable indicator of future results, and fees will reduce your net returns. Reference period: last 24 hours. Source: Bitpanda, based on prices from multiple trading venues. Please review the risk disclosure before investing.

Figures shown refer to the past, and are based on gross performance. Past performance is not a reliable indicator of future results, and fees will reduce your net returns. Reference period: last 24 hours. Source: Bitpanda, based on prices from multiple trading venues. Please review the risk disclosure before investing.

Price of RSK Infrastructure Framework today

Review the latest RSK Infrastructure Framework price movements. Here is today’s trend at a glance: +2.42 %

RSK Infrastructure Framework price statistics

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RSK Infrastructure Framework market stats

  • Daily high

    €0.08

  • Daily low

    €0.07

  • Volatility (1M)

    17.85%

  • 52W High

    €0.13

  • 52W Low

    €0.02

  • Market cap

    €76.59M

RSK Infrastructure Framework conversion table

1 EUR

13.06 RIF

5 EUR

65.29 RIF

10 EUR

130.58 RIF

15 EUR

195.88 RIF

20 EUR

261.17 RIF

25 EUR

326.46 RIF

1 Rsk Infrastructure Framework (RIF) to Us Dollar (USD)

USD 0.09

1 Rsk Infrastructure Framework (RIF) to Swiss Franc (CHF)

CHF 0.07

1 Rsk Infrastructure Framework (RIF) to British Pound Sterling (GBP)

GBP 0.07

1 Rsk Infrastructure Framework (RIF) to Turkish Lira (TRY)

TRY 4.29

1 Rsk Infrastructure Framework (RIF) to Polish Zloty (PLN)

PLN 0.33

1 Rsk Infrastructure Framework (RIF) to Hungarian Forint (HUF)

HUF 27.70

1 Rsk Infrastructure Framework (RIF) to Czech Koruna (CZK)

CZK 1.86

1 Rsk Infrastructure Framework (RIF) to Norwegian Krone (NOK)

NOK 0.83

1 Rsk Infrastructure Framework (RIF) to Swedish Krona (SEK)

SEK 0.86

1 Rsk Infrastructure Framework (RIF) to Danish Krone (DKK)

DKK 0.57

1 Rsk Infrastructure Framework (RIF) to Romanian Leu (RON)

RON 0.40

About RSK Infrastructure Framework (RIF)

RIF is the token required to interact with multiple services in the RSK Infrastructure Framework, a suite of open and decentralised protocols that enable faster, easier and scalable development of distributed applications (dApps). Some of the features offered in the RSK Infrastructure Framework include RIF Marketplace, which provides a one-stop shop for a wide variety of decentralised services, and RIF Gateways, which develops tools and technologies to allow decentralised applications to connect to the external world.

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  • ESG (Environmental, Social, and Governance) regulations for crypto assets aim to address their environmental impact (e.g., energy-intensive mining), promote transparency, and ensure ethical governance practices to align the crypto industry with broader sustainability and societal goals. These regulations encourage compliance with standards that mitigate risks and foster trust in digital assets.

    Name

    Bitpanda Asset Management GmbH, Bitpanda GmbH

    Relevant legal entity identifier

    9845005X9B7N610K0093, 5493007WZ7IFULIL8G21

    Name of the crypto-asset

    Rootstock Infrastructure Framework

    Consensus Mechanism

    The Bitcoin blockchain network uses a consensus mechanism called Proof of Work (PoW) to achieve distributed consensus among its nodes. Here's a detailed breakdown of how it works: Core Concepts 1. Nodes and Miners: Nodes: Nodes are computers running the Bitcoin software that participate in the network by validating transactions and blocks. Miners: Special nodes, called miners, perform the work of creating new blocks by solving complex cryptographic puzzles. 2. Blockchain: The blockchain is a public ledger that records all Bitcoin transactions in a series of blocks. Each block contains a list of transactions, a reference to the previous block (hash), a timestamp, and a nonce (a random number used once). 3. Hash Functions: Bitcoin uses the SHA-256 cryptographic hash function to secure the data in blocks. A hash function takes input data and produces a fixed-size string of characters, which appears random. Consensus Process 1. Transaction Validation: Transactions are broadcast to the network and collected by miners into a block. Each transaction must be validated by nodes to ensure it follows the network's rules, such as correct signatures and sufficient funds. 2. Mining and Block Creation: Nonce and Hash Puzzle: Miners compete to find a nonce that, when combined with the block's data and passed through the SHA-256 hash function, produces a hash that is less than a target value. This target value is adjusted periodically to ensure that blocks are mined approximately every 10 minutes. Proof of Work: The process of finding this nonce is computationally intensive and requires significant energy and resources. Once a miner finds a valid nonce, they broadcast the newly mined block to the network. 3. Block Validation and Addition: Other nodes in the network verify the new block to ensure the hash is correct and that all transactions within the block are valid. If the block is valid, nodes add it to their copy of the blockchain and the process starts again with the next block. 4. Chain Consensus: The longest chain (the chain with the most accumulated proof of work) is considered the valid chain by the network. Nodes always work to extend the longest valid chain. In the case of multiple valid chains (forks), the network will eventually resolve the fork by continuing to mine and extending one chain until it becomes longer. For the calculation of the corresponding indicators, the additional energy consumption and the transactions of the Lightning Network have also been taken into account, as this reflects the categorization of the Digital Token Identifier Foundation for the respective functionally fungible group (“FFG”) relevant for this reporting. If one would exclude these transactions, the respective estimations regarding the “per transaction” count would be substantially higher.

    Incentive Mechanisms and Applicable Fees

    The Bitcoin blockchain relies on a Proof-of-Work (PoW) consensus mechanism to ensure the security and integrity of transactions. This mechanism involves economic incentives for miners and a fee structure that supports network sustainability: Incentive Mechanisms 1. Block Rewards: Newly Minted Bitcoins: Miners are incentivized by block rewards, which consist of newly created bitcoins awarded to the miner who successfully mines a new block. Initially, the block reward was 50 BTC, but it halves every 210,000 blocks (approx. every four years) in an event known as the "halving." Halving and Scarcity: The halving mechanism ensures that the total supply of Bitcoin is capped at 21 million, creating scarcity and potentially increasing value over time. 2. Transaction Fees: User Fees: Each transaction includes a fee paid by the user to incentivize miners to include their transaction in a block. These fees are crucial, especially as the block reward diminishes over time due to halving. Fee Market: Transaction fees are determined by the market, where users compete to have their transactions processed quickly. Higher fees typically result in faster inclusion in a block, especially during periods of high network congestion. For the calculation of the corresponding indicators, the additional energy consumption and the transactions of the Lightning Network have also been taken into account, as this reflects the categorization of the Digital Token Identifier Foundation for the respective functionally fungible group (“FFG”) relevant for this reporting. If one would exclude these transactions, the respective estimations regarding the “per transaction” count would be substantially higher.

    Beginning of the period

    2024-09-09

    End of the period

    2025-09-09

    Energy consumption

    7193151.92900 (kWh/a)

    Energy consumption resources and methodologies

    The energy consumption of this asset is aggregated across multiple components: To determine the energy consumption of a token, the energy consumption of the network(s) bitcoin is calculated first. For the energy consumption of the token, a fraction of the energy consumption of the network is attributed to the token, which is determined based on the activity of the crypto-asset within the network. When calculating the energy consumption, the Functionally Fungible Group Digital Token Identifier (FFG DTI) is used - if available - to determine all implementations of the asset in scope. The mappings are updated regularly, based on data of the Digital Token Identifier Foundation. The information regarding the hardware used and the number of participants in the network is based on assumptions that are verified with best effort using empirical data. In general, participants are assumed to be largely economically rational. As a precautionary principle, we make assumptions on the conservative side when in doubt, i.e. making higher estimates for the adverse impacts.

    Renewable energy consumption

    29.306425042 (%)

    Energy intensity

    8.47532 (kWh)

    Scope 1 DLT GHG emissions - Controlled

    0.00000 (tCO2e/a)

    Scope 2 DLT GHG emissions - Purchased

    2963.55026 (tCO2e/a)

    GHG intensity

    3.49180 (kgCO2e)

    Key energy sources and methodologies

    To determine the proportion of renewable energy usage, the locations of the nodes are to be determined using public information sites, open-source crawlers and crawlers developed in-house. If no information is available on the geographic distribution of the nodes, reference networks are used which are comparable in terms of their incentivization structure and consensus mechanism. This geo-information is merged with public information from Our World in Data, see citation. The intensity is calculated as the marginal energy cost wrt. one more transaction. Ember (2025); Energy Institute - Statistical Review of World Energy (2024) - with major processing by Our World in Data. “Share of electricity generated by renewables - Ember and Energy Institute” [dataset]. Ember, “Yearly Electricity Data Europe”; Ember, “Yearly Electricity Data”; Energy Institute, “Statistical Review of World Energy” [original data]. Retrieved from https://ourworldindata.org/grapher/share-electricity-renewables.

    Key GHG sources and methodologies

    To determine the GHG Emissions, the locations of the nodes are to be determined using public information sites, open-source crawlers and crawlers developed in-house. If no information is available on the geographic distribution of the nodes, reference networks are used which are comparable in terms of their incentivization structure and consensus mechanism. This geo-information is merged with public information from Our World in Data, see citation. The intensity is calculated as the marginal emission wrt. one more transaction. Ember (2025); Energy Institute - Statistical Review of World Energy (2024) - with major processing by Our World in Data. “Carbon intensity of electricity generation - Ember and Energy Institute” [dataset]. Ember, “Yearly Electricity Data Europe”; Ember, “Yearly Electricity Data”; Energy Institute, “Statistical Review of World Energy” [original data]. Retrieved from https://ourworldindata.org/grapher/carbon-intensity-electricity Licenced under CC BY 4.0.

  • Description

    These tokens power Decentralised Physical Infrastructure Networks (DePIN). They facilitate marketplaces for resources like file storage, GPU computing power, or wireless coverage. The token acts as the medium of exchange between providers of the hardware and users of the service.

    Risks

    Supply and demand imbalance. The token economics of these projects rely on a balance between hardware providers (supply) and actual users (demand). Often, the supply of resources grows faster than the demand from paying customers. This can lead to an oversupply of the token as providers sell their earnings, suppressing the price permanently.

    Technical barriers and competition. These networks compete directly with centralised giants like Amazon Web Services (AWS) or Google Cloud. Decentralised alternatives are often slower, more complex to use, and technically demanding.