Time Crystal Synthon: The Way to Integrate Cascade Reactions for Advancing Multistep Flow Synthesis

Multistep flow catalytic reactions in organic chemistry integrate multiple sequential organic reactions to enhance cost-efficiency, time management, and labour resources, all while boosting effectiveness and environmental sustainability. Similar to how we select molecular synthons for reactions in r...

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Main Author: Pathik Sahoo
Format: Article
Language:English
Published: MDPI AG 2023-09-01
Series:ChemEngineering
Subjects:
Online Access:https://www.mdpi.com/2305-7084/7/5/88
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author Pathik Sahoo
author_facet Pathik Sahoo
author_sort Pathik Sahoo
collection DOAJ
description Multistep flow catalytic reactions in organic chemistry integrate multiple sequential organic reactions to enhance cost-efficiency, time management, and labour resources, all while boosting effectiveness and environmental sustainability. Similar to how we select molecular synthons for reactions in retrosynthesis, we can employ time-crystal synthons to integrate catalytic reaction cycles in the development of a reaction pathway. This involves considering individual catalytic reaction steps of cycles as time-consuming events that can be topologically arranged like a clock. This results in a perpetual machine that violates time translational symmetry, leading to the production of a time crystal. This approach involves transferring a single product from one catalytic cycle to a neighbouring reaction cycle, connecting various reaction vessels vertically to establish a ‘cascade’ of reaction cycles. Additionally, catalytic cycles can be integrated by sharing common reaction steps or implementing a metathesis reaction at the junction zone of two neighbouring cycles. Here, the concept of time-crystal synthons facilitates the linear integration of heterogeneous catalytic cycles, step by step, to transfer products through the common reaction medium when modifying conventional flow synthesis. Significantly, this time-crystal synthon-driven multistep approach offers advantages over conventional flow synthesis, as the reaction vessels can be equipped with microwave and photosynthesis methodologies, allowing for the collection of specific products from their respective vessels as needed, providing more options to integrate reactions and enabling flow control using gravity.
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spelling doaj.art-f25257d26eec490795b50aed6364ad0b2023-11-19T16:03:23ZengMDPI AGChemEngineering2305-70842023-09-01758810.3390/chemengineering7050088Time Crystal Synthon: The Way to Integrate Cascade Reactions for Advancing Multistep Flow SynthesisPathik Sahoo0Functional Chromophore Group, National Institute for Materials Science (NIMS), Tsukuba 305-0044, Ibaraki, JapanMultistep flow catalytic reactions in organic chemistry integrate multiple sequential organic reactions to enhance cost-efficiency, time management, and labour resources, all while boosting effectiveness and environmental sustainability. Similar to how we select molecular synthons for reactions in retrosynthesis, we can employ time-crystal synthons to integrate catalytic reaction cycles in the development of a reaction pathway. This involves considering individual catalytic reaction steps of cycles as time-consuming events that can be topologically arranged like a clock. This results in a perpetual machine that violates time translational symmetry, leading to the production of a time crystal. This approach involves transferring a single product from one catalytic cycle to a neighbouring reaction cycle, connecting various reaction vessels vertically to establish a ‘cascade’ of reaction cycles. Additionally, catalytic cycles can be integrated by sharing common reaction steps or implementing a metathesis reaction at the junction zone of two neighbouring cycles. Here, the concept of time-crystal synthons facilitates the linear integration of heterogeneous catalytic cycles, step by step, to transfer products through the common reaction medium when modifying conventional flow synthesis. Significantly, this time-crystal synthon-driven multistep approach offers advantages over conventional flow synthesis, as the reaction vessels can be equipped with microwave and photosynthesis methodologies, allowing for the collection of specific products from their respective vessels as needed, providing more options to integrate reactions and enabling flow control using gravity.https://www.mdpi.com/2305-7084/7/5/88time crystal synthonfractal time crystalcascade of cascade reactionsupramolecular catalystchemical technologycircadian consciousness
spellingShingle Pathik Sahoo
Time Crystal Synthon: The Way to Integrate Cascade Reactions for Advancing Multistep Flow Synthesis
ChemEngineering
time crystal synthon
fractal time crystal
cascade of cascade reaction
supramolecular catalyst
chemical technology
circadian consciousness
title Time Crystal Synthon: The Way to Integrate Cascade Reactions for Advancing Multistep Flow Synthesis
title_full Time Crystal Synthon: The Way to Integrate Cascade Reactions for Advancing Multistep Flow Synthesis
title_fullStr Time Crystal Synthon: The Way to Integrate Cascade Reactions for Advancing Multistep Flow Synthesis
title_full_unstemmed Time Crystal Synthon: The Way to Integrate Cascade Reactions for Advancing Multistep Flow Synthesis
title_short Time Crystal Synthon: The Way to Integrate Cascade Reactions for Advancing Multistep Flow Synthesis
title_sort time crystal synthon the way to integrate cascade reactions for advancing multistep flow synthesis
topic time crystal synthon
fractal time crystal
cascade of cascade reaction
supramolecular catalyst
chemical technology
circadian consciousness
url https://www.mdpi.com/2305-7084/7/5/88
work_keys_str_mv AT pathiksahoo timecrystalsynthonthewaytointegratecascadereactionsforadvancingmultistepflowsynthesis