Hinze, Willie L. et al. published their research in Analytical Chemistry in 1985 | CAS: 93379-49-8

((4S,5S)-2,2-dimethyl-1,3-dioxolane-4,5-diyl)bis(diphenylmethanol) (cas: 93379-49-8) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. 1,3-Benzodioxole can be synthesized from catechol with disubstituted halomethanes.Safety of ((4S,5S)-2,2-dimethyl-1,3-dioxolane-4,5-diyl)bis(diphenylmethanol)

Liquid chromatographic separation of enantiomers using a chiral β-cyclodextrin-bonded stationary phase and conventional aqueous-organic mobile phases was written by Hinze, Willie L.;Riehl, Terrence E.;Armstrong, Daniel W.;DeMond, Wade;Alak, Ala;Ward, Tim. And the article was included in Analytical Chemistry in 1985.Safety of ((4S,5S)-2,2-dimethyl-1,3-dioxolane-4,5-diyl)bis(diphenylmethanol) This article mentions the following:

A chiral stationary phase composed of chem. bonded β-cyclodextrin (β-CD) was used to sep. enantiomers of dansylsulfonamide, β-naphthamide, or β-naphthyl ester derivatives of amino acids, barbiturates, substituted phenylacetic acids, and dioxolanes. The separations are reasonably rationalized in terms of the inclusion process between the enantiomers and β-cyclodextrin and consideration of a 3-point attachment model. The effects of mobile-phase composition, temperature, and flow rate upon the observed enantiomeric selectivity and resolution were critically assessed. A brief prospectus on the usefulness of cyclodextrin chiral stationary phases in high-performance liquid chromatog. enantiomeric separations is presented. In the experiment, the researchers used many compounds, for example, ((4S,5S)-2,2-dimethyl-1,3-dioxolane-4,5-diyl)bis(diphenylmethanol) (cas: 93379-49-8Safety of ((4S,5S)-2,2-dimethyl-1,3-dioxolane-4,5-diyl)bis(diphenylmethanol)).

((4S,5S)-2,2-dimethyl-1,3-dioxolane-4,5-diyl)bis(diphenylmethanol) (cas: 93379-49-8) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. 1,3-Benzodioxole can be synthesized from catechol with disubstituted halomethanes.Safety of ((4S,5S)-2,2-dimethyl-1,3-dioxolane-4,5-diyl)bis(diphenylmethanol)

Referemce:
1,3-Benzodioxole – Wikipedia,
Dioxole | C3H4O2 – PubChem

Sharma, Swagat et al. published their research in ACS Medicinal Chemistry Letters in 2022 | CAS: 1544-85-0

2,2-Difluorobenzo[d][1,3]dioxol-5-amine (cas: 1544-85-0) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Dioxole functionalized metal-organic frameworks have also been recently reported.Name: 2,2-Difluorobenzo[d][1,3]dioxol-5-amine

Synthesis and Biological Characterization of a Series of 2-Sulfonamidebenzamides as Allosteric Modulators of MrgX1 was written by Sharma, Swagat;Peng, Qi;Vadukoot, Anish K.;Aretz, Christopher D.;Jensen, Aaron A.;Wallick, Alexander I.;Dong, Xinzhong;Hopkins, Corey R.. And the article was included in ACS Medicinal Chemistry Letters in 2022.Name: 2,2-Difluorobenzo[d][1,3]dioxol-5-amine This article mentions the following:

The present study describes the continued efforts in the discovery and characterization of a series of 2-sulfonamidebenzamides e.g., 3-(Cyclopropanesulfonamido)-N-(2-ethoxyphenyl)-2-naphthamide as allosteric modulators of MrgX1. MrgX1 has been shown to be an attractive target as a nonopioid receptor for the potential treatment of chronic pain. Working from the original compound, ML382, and utilizing iterative medicinal chem., key halogen substituents that improve MrgX1 potency by ~8-fold were identified. In addition, the compounds in Tier 1 drug metabolism and pharmacokinetics assays were evaluated and the key compounds that impart improved potency and microsomal stability were identified. In the experiment, the researchers used many compounds, for example, 2,2-Difluorobenzo[d][1,3]dioxol-5-amine (cas: 1544-85-0Name: 2,2-Difluorobenzo[d][1,3]dioxol-5-amine).

2,2-Difluorobenzo[d][1,3]dioxol-5-amine (cas: 1544-85-0) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Dioxole functionalized metal-organic frameworks have also been recently reported.Name: 2,2-Difluorobenzo[d][1,3]dioxol-5-amine

Referemce:
1,3-Benzodioxole – Wikipedia,
Dioxole | C3H4O2 – PubChem

Zhu, Haotian et al. published their research in Yingyong Huaxue in 2015 | CAS: 177-10-6

1,4-Dioxaspiro[4.5]decane (cas: 177-10-6) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Dioxole functionalized metal-organic frameworks have also been recently reported.Name: 1,4-Dioxaspiro[4.5]decane

Synthesis, crystal structure and catalytic activity of a Dawson-type tungstophosphate decorated by copper complexes was written by Zhu, Haotian;Li, Xiaohui;Bai, Jianping;Lu, Mingda;An, Yue;You, Wansheng. And the article was included in Yingyong Huaxue in 2015.Name: 1,4-Dioxaspiro[4.5]decane This article mentions the following:

An inorganic-organic hybrid compound [Cu(H2biim)2(H2O)][{Cu(H2biim)2}2(P2W18O62)]·11H2O (H2biim = 2,2′-biimidazole) (1) was hydrothermally constructed by the reaction of Cu(II)-H2biim complexes and Dawson-type tungstophosphate, and characterized by single-crystal x-ray diffraction, IR spectroscopy (IR), X-ray powder diffraction (XRD), elemental anal. and electrochem. anal. Structural anal. showed that the polyanion [P2W18O62]6-, as a bidentate ligand, coordinates with two Cu2+ ions to form a bi-Cu(II)-supporting heteropolyanion [{Cu(H2biim)2}2(P2W18O62)]2-, which was surrounded by an isolated [Cu(H2biim)2(H2O)]2+ and eleven H2O mols. The presence of N-H···O/OW hydrogen bonds between H2biim mols. and polyoxoanion or water mols., in company with the synergistic effect of electrostatic interactions and π-π stack, gave a crystal material with 3-dimensional framework further. Compound 1 displayed good electrocatalytic activity toward the reduction of H2O2 and Na2NO2. Meanwhile it was also a good acid-catalyst for the synthesis of cyclohexanone ethylene ketal and could be recycled. In the experiment, the researchers used many compounds, for example, 1,4-Dioxaspiro[4.5]decane (cas: 177-10-6Name: 1,4-Dioxaspiro[4.5]decane).

1,4-Dioxaspiro[4.5]decane (cas: 177-10-6) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Dioxole functionalized metal-organic frameworks have also been recently reported.Name: 1,4-Dioxaspiro[4.5]decane

Referemce:
1,3-Benzodioxole – Wikipedia,
Dioxole | C3H4O2 – PubChem

Sugimura, Hideyuki et al. published their research in Tennen Yuki Kagobutsu Toronkai Koen Yoshishu in 1998 | CAS: 14131-84-1

(3aS,4S,6R,6aS)-6-((R)-2,2-Dimethyl-1,3-dioxolan-4-yl)-2,2-dimethyltetrahydrofuro[3,4-d][1,3]dioxol-4-ol (cas: 14131-84-1) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Although benzodioxole is not particularly important, many related compounds containing the methylenedioxyphenyl group are bioactive, and thus are found in pesticides and pharmaceuticals.Recommanded Product: (3aS,4S,6R,6aS)-6-((R)-2,2-Dimethyl-1,3-dioxolan-4-yl)-2,2-dimethyltetrahydrofuro[3,4-d][1,3]dioxol-4-ol

Synthetic studies on guanofosfocins – synthesis of 8-(mannopyranosyloxy)adenosine derivatives was written by Sugimura, Hideyuki;Kanamori, Hideyuki;Stansfield, Kevin. And the article was included in Tennen Yuki Kagobutsu Toronkai Koen Yoshishu in 1998.Recommanded Product: (3aS,4S,6R,6aS)-6-((R)-2,2-Dimethyl-1,3-dioxolan-4-yl)-2,2-dimethyltetrahydrofuro[3,4-d][1,3]dioxol-4-ol This article mentions the following:

Two approaches for the synthesis of 8-(glycosyloxy)purine nucleoside, which is found in a recently isolated chitin synthase inhibitor-guanofosfocin, have been examined One contains substitution reaction of alc. with purine nucleoside bearing a leaving group at the 8 position. Through a number of model reactions using cyclohexanol as a nucleophile and 8-substituted adenosine derivatives as a substrate, we finally found that N6-benzoyl-8-bromoadenosine derivative (I; R = Br, R1 = Bz, R2 = 4,4′-dimethoxytrityl) reacted with sodium alkoxides derived from di-O-isopropylidene-α-D-mannoses (Q-H and Q1-H), in DMF at room temperature to yield 8-(mannosyloxy)adenosines (I; R = Q, R1 = Bz) and (I; R = Q1, R1 = Bz) and in reasonable yields. Another approach involves glycosylation reaction of 8-oxoadenosine derivatives with appropriate mannosyl donors. We found that N6-trityl-adenosine derivative (II) was a suitable substrate for this reaction. When 2,3,4,6-tetra-O-benzyl-α-D-mannosyl bromide was allowed to react with 8-hydroxyadenosine derivative (II) in the presence of silver carbonate in toluene at 60°C, 8-(mannosyloxy)adenosine (I; R = Q2, R1 = R2 = Tr) is obtained in 79% yield. The 8-mannosyloxy products were isolated solely as α anomers, assigned by 1JC-H value of C-1 in the mannose moiety. In the experiment, the researchers used many compounds, for example, (3aS,4S,6R,6aS)-6-((R)-2,2-Dimethyl-1,3-dioxolan-4-yl)-2,2-dimethyltetrahydrofuro[3,4-d][1,3]dioxol-4-ol (cas: 14131-84-1Recommanded Product: (3aS,4S,6R,6aS)-6-((R)-2,2-Dimethyl-1,3-dioxolan-4-yl)-2,2-dimethyltetrahydrofuro[3,4-d][1,3]dioxol-4-ol).

(3aS,4S,6R,6aS)-6-((R)-2,2-Dimethyl-1,3-dioxolan-4-yl)-2,2-dimethyltetrahydrofuro[3,4-d][1,3]dioxol-4-ol (cas: 14131-84-1) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Although benzodioxole is not particularly important, many related compounds containing the methylenedioxyphenyl group are bioactive, and thus are found in pesticides and pharmaceuticals.Recommanded Product: (3aS,4S,6R,6aS)-6-((R)-2,2-Dimethyl-1,3-dioxolan-4-yl)-2,2-dimethyltetrahydrofuro[3,4-d][1,3]dioxol-4-ol

Referemce:
1,3-Benzodioxole – Wikipedia,
Dioxole | C3H4O2 – PubChem

Fang, Lin et al. published their research in Cuihua Xuebao in 2013 | CAS: 177-10-6

1,4-Dioxaspiro[4.5]decane (cas: 177-10-6) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Dioxole functionalized metal-organic frameworks have also been recently reported.Computed Properties of C8H14O2

Carbon-coated mesoporous silica functionalized with sulfonic acid groups and its application to acetalization was written by Fang, Lin;Zhang, Kun;Chen, Lu;Wu, Peng. And the article was included in Cuihua Xuebao in 2013.Computed Properties of C8H14O2 This article mentions the following:

The inner surface of mesoporous silica SBA-15 was coated by a homogeneous polycyclic carbon layer through controlled carbonization of furfuryl alc. The composite was subsequently functionalized with sulfonic acid (-SO3H) groups to form a strong solid acid material, with a tunable acid site d. in the range of 0.38-0.84 mmol/g by varying the thickness of the carbon layer. Structural anal. and reaction data revealed that the solid acid catalyst exhibited high reactivity towards the acetalization of aldehydes or ketones with alcs. because of the uniform carbon coating of the mesopores, high acid site d., and its mech. stability. In the experiment, the researchers used many compounds, for example, 1,4-Dioxaspiro[4.5]decane (cas: 177-10-6Computed Properties of C8H14O2).

1,4-Dioxaspiro[4.5]decane (cas: 177-10-6) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Dioxole functionalized metal-organic frameworks have also been recently reported.Computed Properties of C8H14O2

Referemce:
1,3-Benzodioxole – Wikipedia,
Dioxole | C3H4O2 – PubChem

Lu, Jingkun et al. published their research in Inorganic Chemistry in 2018 | CAS: 13818-44-5

(2-Oxo-1,3-dioxolan-4-yl)methyl methacrylate (cas: 13818-44-5) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Although benzodioxole is not particularly important, many related compounds containing the methylenedioxyphenyl group are bioactive, and thus are found in pesticides and pharmaceuticals.Quality Control of (2-Oxo-1,3-dioxolan-4-yl)methyl methacrylate

Facile CO2 Cycloaddition to Epoxides by Using a Tetracarbonyl Metal Selenotungstate Derivate [{Mn(CO)3}4(Se2W11O43)]8- was written by Lu, Jingkun;Ma, Xinyi;Singh, Vikram;Zhang, Yujiao;Wang, Ping;Feng, Junwei;Ma, Pengtao;Niu, Jingyang;Wang, Jingping. And the article was included in Inorganic Chemistry in 2018.Quality Control of (2-Oxo-1,3-dioxolan-4-yl)methyl methacrylate This article mentions the following:

A novel polyoxometalate cluster, i.e., Na1.5H4.5[(CH3)4N]2{[Mn(CO)3]4(Se2W11O43)}·9H2O (1), has been successfully synthesized under moderately acidic conditions. Compound 1 contains four electron-donating {Mn(CO)3}+ organometallic entities, which are grafted over an unprecedented heteropolytungstate electron-acceptor group. Compound 1 was further structurally characterized by various physicochem. techniques like elemental analyses, inductively coupled plasma (ICP) analyses, IR and UV-vis spectroscopy, electrochem., and single-crystal X-ray diffraction, and so on. The polyoxoanion of 1 comprises a novel {Se2W11} fragment, which is obtained from mol. assembly of rare {SeW3} and {SeW8} species. Evaluation of the data from solution-state IR spectrum showed excellent agreement with the solid state IR spectrum, indicating the intact clusters in the CH3CN/Na2SO4 solvent. Also, neg. electrospray ionization mass spectrometry (ESI-MS) was an alternative tool to verify the stability of 1 in the mixed solvent. Addnl., the resulting hybrid can act as a catalyst for cyclic carbonate formation from the reactants epoxides and CO2 under modest reaction conditions in conjunction with a 1-ethyl-1-methylpyrrolidinium bromide (2). The good activity can be substantiated due to the cooperative influence of polyoxoanion and Br ions. Complex 1 can also be easily recycled and reused three times without obvious decrease of catalytic activity. In the experiment, the researchers used many compounds, for example, (2-Oxo-1,3-dioxolan-4-yl)methyl methacrylate (cas: 13818-44-5Quality Control of (2-Oxo-1,3-dioxolan-4-yl)methyl methacrylate).

(2-Oxo-1,3-dioxolan-4-yl)methyl methacrylate (cas: 13818-44-5) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Although benzodioxole is not particularly important, many related compounds containing the methylenedioxyphenyl group are bioactive, and thus are found in pesticides and pharmaceuticals.Quality Control of (2-Oxo-1,3-dioxolan-4-yl)methyl methacrylate

Referemce:
1,3-Benzodioxole – Wikipedia,
Dioxole | C3H4O2 – PubChem

Ishihara, Jun et al. published their research in Heterocycles in 2017 | CAS: 15186-48-8

(R)-2,2-Dimethyl-1,3-dioxolane-4-carbaldehyde (cas: 15186-48-8) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Although benzodioxole is not particularly important, many related compounds containing the methylenedioxyphenyl group are bioactive, and thus are found in pesticides and pharmaceuticals.Recommanded Product: 15186-48-8

Concise formation of spirocyclic compounds for marine phycotoxins was written by Ishihara, Jun;Tojo, Shingo;Makino, Takuya;Sekiya, Hiroshi;Tanabe, Akiko;Shiraishi, Mitsutaka;Murai, Akio;Hatakeyama, Susumi. And the article was included in Heterocycles in 2017.Recommanded Product: 15186-48-8 This article mentions the following:

The stereoselective construction of azaspiro[5.6]dodecenone skeletons, e.g. I by the chiral BOX/copper-mediated Diels-Alder reaction was described. The cycloaddition reaction of α-methylene caprolactams and functionalized dienes allowed the concise formation of spirocyclic structures of marine phycotoxins, such as pinnatoxin and spirolide. In the experiment, the researchers used many compounds, for example, (R)-2,2-Dimethyl-1,3-dioxolane-4-carbaldehyde (cas: 15186-48-8Recommanded Product: 15186-48-8).

(R)-2,2-Dimethyl-1,3-dioxolane-4-carbaldehyde (cas: 15186-48-8) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Although benzodioxole is not particularly important, many related compounds containing the methylenedioxyphenyl group are bioactive, and thus are found in pesticides and pharmaceuticals.Recommanded Product: 15186-48-8

Referemce:
1,3-Benzodioxole – Wikipedia,
Dioxole | C3H4O2 – PubChem

Maruyama, Kazuya et al. published their research in Macromolecules (Washington, DC, United States) in 2022 | CAS: 177-10-6

1,4-Dioxaspiro[4.5]decane (cas: 177-10-6) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Dioxole functionalized metal-organic frameworks have also been recently reported.COA of Formula: C8H14O2

Alternating Cationic Copolymerization of Vinyl Ethers and Aryl-Substituted Cyclic Acetals: Structural Investigation of Effects of Cyclic Acetals on Copolymerizability was written by Maruyama, Kazuya;Kanazawa, Arihiro;Aoshima, Sadahito. And the article was included in Macromolecules (Washington, DC, United States) in 2022.COA of Formula: C8H14O2 This article mentions the following:

The effects of the structural difference of cyclic acetals were investigated in the cationic copolymerization with vinyl monomers via the concurrent vinyl-addition and ring-opening mechanisms. A series of alkyl- and aryl-substituted cyclic acetals were successfully copolymerized with 2-chloroethyl vinyl ether (CEVE) under appropriate conditions. In particular, copolymerization of an aryl-substituted 2-(4-methoxyphenyl)-1,3-dioxolane (PMPDOL) with CEVE involved exclusive crossover reactions between PMPDOL and CEVE, resulting in alternating copolymers. Copolymerization of PMPDOL and other vinyl ethers and styrene derivatives also proceeded via the frequent crossover reactions, while the copolymerization of 2-methyl-1,3-dioxolane, a methyl-substituted counterpart of PMPDOL, with vinyl monomers except for CEVE proceeded negligibly. The difference in the substituents of cyclic acetals significantly affected the electronic and steric environments around the carbocation generated in the propagation reaction, which is related to the frequency of the crossover reaction. Acid hydrolysis of alternating copolymers resulted in complete degradation and selective generation of a single compound due to the periodic incorporation of acetal structures in the main chains, which supported the well-defined structure of copolymers. The monomer reactivity ratios were also consistent with the copolymerizability difference between the aryl- and alkyl-substituted cyclic acetals. The structure-polymerizability relationship of cyclic acetals in the copolymerization was discussed based on the reaction mechanism during the propagating reaction. In the experiment, the researchers used many compounds, for example, 1,4-Dioxaspiro[4.5]decane (cas: 177-10-6COA of Formula: C8H14O2).

1,4-Dioxaspiro[4.5]decane (cas: 177-10-6) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Dioxole functionalized metal-organic frameworks have also been recently reported.COA of Formula: C8H14O2

Referemce:
1,3-Benzodioxole – Wikipedia,
Dioxole | C3H4O2 – PubChem

Liu, Shan et al. published their research in Journal of Organic Chemistry in 2022 | CAS: 28657-75-2

1-(6-Aminobenzo[d][1,3]dioxol-5-yl)ethanone (cas: 28657-75-2) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Dioxole functionalized metal-organic frameworks have also been recently reported.Safety of 1-(6-Aminobenzo[d][1,3]dioxol-5-yl)ethanone

Rh(III)-Catalyzed Tandem Reaction Access to (Quinazolin-2-yl)methanone Derivatives from 2,1-Benzisoxazoles and α-Azido Ketones was written by Liu, Shan;Wang, An-Jing;Li, Min;Zhang, Jing;Yin, Guo-Dong;Shu, Wen-Ming;Yu, Wei-Chu. And the article was included in Journal of Organic Chemistry in 2022.Safety of 1-(6-Aminobenzo[d][1,3]dioxol-5-yl)ethanone This article mentions the following:

A Rh(III)-catalyzed tandem reaction for the synthesis of (quinazolin-2-yl)methanone derivatives was been explored from 2,1-benzisoxazoles and α-azido ketones. The transformation involved Rh(III)-catalyzed denitrogenation of α-azido ketones, aza-[4 + 2] cycloaddition, ring opening, and dehydration aromatization processes. Notably, the aza-[4 + 2] cycloaddition of an imine rhodium complex intermediate with 2,1-benzisoxazoles was key to this reaction. In the experiment, the researchers used many compounds, for example, 1-(6-Aminobenzo[d][1,3]dioxol-5-yl)ethanone (cas: 28657-75-2Safety of 1-(6-Aminobenzo[d][1,3]dioxol-5-yl)ethanone).

1-(6-Aminobenzo[d][1,3]dioxol-5-yl)ethanone (cas: 28657-75-2) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Dioxole functionalized metal-organic frameworks have also been recently reported.Safety of 1-(6-Aminobenzo[d][1,3]dioxol-5-yl)ethanone

Referemce:
1,3-Benzodioxole – Wikipedia,
Dioxole | C3H4O2 – PubChem

Radu, Stelian et al. published their research in Afinidad in 1995 | CAS: 2568-30-1

2-Chloromethyl-1,3-dioxolane (cas: 2568-30-1) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Dioxole functionalized metal-organic frameworks have also been recently reported.Reference of 2568-30-1

New aromatic azobis ethers obtained by condensation of sodium 4,4′-azodiphenoxide with monochloromethylated derivatives was written by Radu, Stelian;Borrell, Jose Ignacio;Gassiot i Matas, Miquel. And the article was included in Afinidad in 1995.Reference of 2568-30-1 This article mentions the following:

Seven new aromatic azobis ethers were synthesized by condensation of the sodium salt of 4,4′-dihydroxyazobenzene with following monochloromethylated derivatives: 1-chloro-2-(chloromethyl)benzene, 1-chloro-3-(chloromethyl)benzene, 1-chloro-4-(chloromethyl)benzene, 1-(chloromethyl)naphthalene, 2-(chloromethyl)-1H-isoindole-1,3(2H)dione, 2-chloromethyl-1,3-dioxolane and diphenylchloromethane. Behavior as liquid crystals was not detected for these compounds In the experiment, the researchers used many compounds, for example, 2-Chloromethyl-1,3-dioxolane (cas: 2568-30-1Reference of 2568-30-1).

2-Chloromethyl-1,3-dioxolane (cas: 2568-30-1) belongs to dioxole derivatives. Dioxoles, particularly fluorinated dioxoles, are used as co-monomers to make polymers that find use in forming protective coatings for chemical resistance. Dioxole functionalized metal-organic frameworks have also been recently reported.Reference of 2568-30-1

Referemce:
1,3-Benzodioxole – Wikipedia,
Dioxole | C3H4O2 – PubChem