Treffer: A scalable post quantum secure blockchain framework with adaptive time consensus in cloud environments.

Title:
A scalable post quantum secure blockchain framework with adaptive time consensus in cloud environments.
Authors:
Velmurugan M; Department of Computer Science and Engineering, Vel Tech Rangarajan Dr. Sagunthala R&D Institute of Science and Technology, Chennai, 600062, Tamil Nadu, India. vtd1037@veltech.edu.in., Kumar MR; Department of Computer Science and Engineering, Vel Tech Rangarajan Dr. Sagunthala R&D Institute of Science and Technology, Chennai, 600062, Tamil Nadu, India.
Source:
Scientific reports [Sci Rep] 2025 Dec 22; Vol. 15 (1), pp. 45090. Date of Electronic Publication: 2025 Dec 22.
Publication Type:
Journal Article
Language:
English
Journal Info:
Publisher: Nature Publishing Group Country of Publication: England NLM ID: 101563288 Publication Model: Electronic Cited Medium: Internet ISSN: 2045-2322 (Electronic) Linking ISSN: 20452322 NLM ISO Abbreviation: Sci Rep Subsets: PubMed not MEDLINE; MEDLINE
Imprint Name(s):
Original Publication: London : Nature Publishing Group, copyright 2011-
References:
PLoS One. 2023 Feb 1;18(2):e0279429. (PMID: 36724147)
PeerJ Comput Sci. 2023 Nov 29;9:e1705. (PMID: 38077532)
Sensors (Basel). 2025 May 29;25(11):. (PMID: 40968941)
Contributed Indexing:
Keywords: Blockchain; Hash chain validation; NTRU encryption; Proof of elapsed time; Quantum cryptography
Entry Date(s):
Date Created: 20251222 Latest Revision: 20260101
Update Code:
20260101
PubMed Central ID:
PMC12749202
DOI:
10.1038/s41598-025-32745-w
PMID:
41430145
Database:
MEDLINE

Weitere Informationen

Blockchain deployments continue to face challenges related to scalability, energy consumption, and susceptibility of classical cryptographic primitives to emerging quantum attacks. Conventional systems employing RSA or DSA signatures and consensus mechanisms such as Proof of Work (PoW) or Proof of Stake (PoS) incur substantial computational overhead and are not well suited for cloud-scale execution. This study presents PQ-PoETChain, a post-quantum-secure blockchain model integrating NTRU-based signatures, an adaptive Proof of Elapsed Time (PoET) protocol executed within Trusted Execution Environments (TEEs), and a Lightweight Hash Validation (LHV) mechanism. The framework was implemented in Python and evaluated in a controlled simulation environment using 50-1000 nodes, with repeated trials to measure variability across throughput, latency, and energy metrics. NTRU demonstrated sub-2 ms signature operations, while the adaptive PoET configuration reduced consensus delay under load-dependent conditions. Across multiple experimental runs, the system achieved an average throughput of ~ 195 TPS with a latency of 189 ± 4 ms at 500 nodes. Energy consumption reduced by up to 91.8% (± 1.6%) when compared with PoW under identical conditions. LHV further lowered verification cost by replacing Merkle-tree traversal with constant-time hash-pointer validation. Results indicate that PQ-PoETChain offers a balanced combination of quantum-resilient security and improved performance characteristics suitable for cloud-native and large-scale deployments.
(© 2025. The Author(s).)

Declarations. Competing interests: The authors declare no competing interests. Consent to publish: All the authors gave permission to Consent to publish.