Newly Emerging Metal–Organic Frameworks (MOF), MXenes and Zeolite …
241
12. Dujardin MC, Cazé C, Vroman I (2000) Ion-exchange resins bearing thiol groups to remove
mercury: Part 1: synthesis and use of polymers prepared from thioester supported resin. React.
Funct. Polym. 43:123–132
13. Hadi P, To MH, Hui CW, Lin CSK, McKay G (2015) Aqueous mercury adsorption by activated
carbons. Water Res. 73:37–55
14. Tchinda AJ, Ngameni E, Kenfack IT, Walcarius A (2009) One-step preparation of thiolfunctionalized porous clay heterostructures: application to hg(ii) binding and characterization
of mass transport issues. Chem. Mater. 21:4111–4121
15. Homaeigohar S, Elbahri M (2017) Graphene membranes for water desalination. NPG Asia
Mater. 9:e427
16. Abraham J, Vasu KS, Williams CD, Gopinadhan K, Su Y, Cherian CT, Dix J, Prestat E, Haigh
SJ, Grigorieva IV (2017) Tunable sieving of ions using graphene oxide membranes. Nat.
Nanotechnol. 12:546–550
17. Heiranian M, Farimani AB, Aluru NR (2015) Water desalination with a single-layer MoS2
nanopore. Nat. Commun. 6:8616
18. Gao H, Shi Q, Rao D, Zhang Y, Su J, Liu Y, Wang Y, Deng K, Lu R (2017) Rational design and
strain engineering of nanoporous boron nitride nanosheet membranes for water desalination.
J. Phys. Chem. C. 121:22105–22113
19. Khataee A, Bayat G, Azamat J (2017) Molecular dynamics simulation of salt rejection through
silicon carbide nanotubes as a nanostructure membrane. J. Molecul. Graph. Modell. 71:176–
183
20. Jamali SH, Vlugt TJ, Lin LC (2017) Atomistic understanding of zeolite nanosheets for water
desalination. J. Phys. Chem. C. 121:11273–11280
21. Khajeh M, Laurent S, Dastafkan K (2013) Nanoadsorbents: classification, preparation, and
applications (with emphasis on aqueous media). Chem. Rev. 113:7728–7768
22. Manos MJ, Petkov VG, Kanatzidis MG (2009) H 2x Mn x Sn 3-x S 6 (x= 0.11–0.25): a novel
reusable sorbent for highly specific mercury capture under extreme ph conditions. Adv. Funct.
Mater. 19:1087–1092
23. Pi Y, Li X, Xia Q, Wu J, Li Y, Xiao J, Li Z (2018) Adsorptive and photocatalytic removal of
persistent organic pollutants (pops) in water by metal-organic frameworks (MOFs). Chem.
Eng. J. 337:351–371
24. Zhou J, Wang B (2017) Emerging crystalline porous materials as a multifunctional platform
for electrochemical energy storage. Chem. Soc. Rev. 46:6927–6945
25. Eddaoudi M, Kim J, Rosi N, Vodak D, Wachter J, O’Keeffe M, Yaghi OM (2002) Systematic
design of pore size and functionality in isoreticular mofs and their application in methane
storage. Science 295:469–472
26. Li H, Eddaoudi M, O’Keeffe M, Yaghi OM (1999) Design and synthesis of an exceptionally
stable and highly porous metal-organic framework. Nature 402:276–279
27. Silva P, Vilela SMF, Tomé JPC, Almeida Paz FA (2015) Multifunctional metal–organic
frameworks: from academia to industrial applications. Chem. Soc. Rev. 44:6774–6803
28. Li J, Wang X, Zhao G, Chen C, Chai Z, Alsaedi A, Hayat T, Wang X (2018) Metal-organic
framework-based materials: superior adsorbents for the capture of toxic and radioactive metal
ions. Chem. Soc. Rev. 47:2322–2356
29. Humplik T, Lee J, O’Hern SC, Fellman BA, Baig MA, Hassan SF, Atieh MA, Rahman F,
Laoui T, Karnik R (2011) Nanostructured materials for water desalination. Nanotechnology
22:292001
30. Xu L, Sun J (2006) Recent advances in the synthesis and application of two-dimensional
zeolites. Adv. Energy Mater. 6:1600441
31. Pophale R, Cheeseman PA, Deem MW (2011) A database of new zeolite-like materials. Phys.
Chem. Chem. Phys. 13:12407–12412
32. Naguib M, Mashtalir O, Carle J, Presser V, Lu J, Hultman L, Gogotsi Y, Barsoum MW (2012)
Two-dimensional transition metal carbides. ACS Nano 6:1322–1331
33. Anasori B, Xie Y, Beidaghi M, Lu J, Hosler BC, Hultman L, Kent PRC, Gogotsi Y, Barsoum
MW (2015) Two-dimensional, ordered, double transition metals carbides (mxenes). ACS
Nano 9:9507–9516
241
12. Dujardin MC, Cazé C, Vroman I (2000) Ion-exchange resins bearing thiol groups to remove
mercury: Part 1: synthesis and use of polymers prepared from thioester supported resin. React.
Funct. Polym. 43:123–132
13. Hadi P, To MH, Hui CW, Lin CSK, McKay G (2015) Aqueous mercury adsorption by activated
carbons. Water Res. 73:37–55
14. Tchinda AJ, Ngameni E, Kenfack IT, Walcarius A (2009) One-step preparation of thiolfunctionalized porous clay heterostructures: application to hg(ii) binding and characterization
of mass transport issues. Chem. Mater. 21:4111–4121
15. Homaeigohar S, Elbahri M (2017) Graphene membranes for water desalination. NPG Asia
Mater. 9:e427
16. Abraham J, Vasu KS, Williams CD, Gopinadhan K, Su Y, Cherian CT, Dix J, Prestat E, Haigh
SJ, Grigorieva IV (2017) Tunable sieving of ions using graphene oxide membranes. Nat.
Nanotechnol. 12:546–550
17. Heiranian M, Farimani AB, Aluru NR (2015) Water desalination with a single-layer MoS2
nanopore. Nat. Commun. 6:8616
18. Gao H, Shi Q, Rao D, Zhang Y, Su J, Liu Y, Wang Y, Deng K, Lu R (2017) Rational design and
strain engineering of nanoporous boron nitride nanosheet membranes for water desalination.
J. Phys. Chem. C. 121:22105–22113
19. Khataee A, Bayat G, Azamat J (2017) Molecular dynamics simulation of salt rejection through
silicon carbide nanotubes as a nanostructure membrane. J. Molecul. Graph. Modell. 71:176–
183
20. Jamali SH, Vlugt TJ, Lin LC (2017) Atomistic understanding of zeolite nanosheets for water
desalination. J. Phys. Chem. C. 121:11273–11280
21. Khajeh M, Laurent S, Dastafkan K (2013) Nanoadsorbents: classification, preparation, and
applications (with emphasis on aqueous media). Chem. Rev. 113:7728–7768
22. Manos MJ, Petkov VG, Kanatzidis MG (2009) H 2x Mn x Sn 3-x S 6 (x= 0.11–0.25): a novel
reusable sorbent for highly specific mercury capture under extreme ph conditions. Adv. Funct.
Mater. 19:1087–1092
23. Pi Y, Li X, Xia Q, Wu J, Li Y, Xiao J, Li Z (2018) Adsorptive and photocatalytic removal of
persistent organic pollutants (pops) in water by metal-organic frameworks (MOFs). Chem.
Eng. J. 337:351–371
24. Zhou J, Wang B (2017) Emerging crystalline porous materials as a multifunctional platform
for electrochemical energy storage. Chem. Soc. Rev. 46:6927–6945
25. Eddaoudi M, Kim J, Rosi N, Vodak D, Wachter J, O’Keeffe M, Yaghi OM (2002) Systematic
design of pore size and functionality in isoreticular mofs and their application in methane
storage. Science 295:469–472
26. Li H, Eddaoudi M, O’Keeffe M, Yaghi OM (1999) Design and synthesis of an exceptionally
stable and highly porous metal-organic framework. Nature 402:276–279
27. Silva P, Vilela SMF, Tomé JPC, Almeida Paz FA (2015) Multifunctional metal–organic
frameworks: from academia to industrial applications. Chem. Soc. Rev. 44:6774–6803
28. Li J, Wang X, Zhao G, Chen C, Chai Z, Alsaedi A, Hayat T, Wang X (2018) Metal-organic
framework-based materials: superior adsorbents for the capture of toxic and radioactive metal
ions. Chem. Soc. Rev. 47:2322–2356
29. Humplik T, Lee J, O’Hern SC, Fellman BA, Baig MA, Hassan SF, Atieh MA, Rahman F,
Laoui T, Karnik R (2011) Nanostructured materials for water desalination. Nanotechnology
22:292001
30. Xu L, Sun J (2006) Recent advances in the synthesis and application of two-dimensional
zeolites. Adv. Energy Mater. 6:1600441
31. Pophale R, Cheeseman PA, Deem MW (2011) A database of new zeolite-like materials. Phys.
Chem. Chem. Phys. 13:12407–12412
32. Naguib M, Mashtalir O, Carle J, Presser V, Lu J, Hultman L, Gogotsi Y, Barsoum MW (2012)
Two-dimensional transition metal carbides. ACS Nano 6:1322–1331
33. Anasori B, Xie Y, Beidaghi M, Lu J, Hosler BC, Hultman L, Kent PRC, Gogotsi Y, Barsoum
MW (2015) Two-dimensional, ordered, double transition metals carbides (mxenes). ACS
Nano 9:9507–9516
