organic compounds\(\def\hfill{\hskip 5em}\def\hfil{\hskip 3em}\def\eqno#1{\hfil {#1}}\)

Journal logoIUCrDATA
ISSN: 2414-3146

tert-Butyl 5-{2-[2-(N-ethynyl-4-methyl­benzene­sulfonamido)­phen­yl]ethyn­yl}furan-2-carboxyl­ate

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aUniversity Mainz, Duesbergweg 10-14, 55099 Mainz, Germany
*Correspondence e-mail: [email protected]

Edited by W. T. A. Harrison, University of Aberdeen, United Kingdom (Received 25 June 2025; accepted 21 July 2025; online 15 August 2025)

The crystal structure of an o,N-dialkynyl­tosyl­aniline, C26H23NO5S, is presented. Two essentially planar and nearly parallel branches are connected to the aniline unit and the angle between the alkynes amounts to 26 (4)°. Weak intra­molecular aromatic ππ stacking occurs.

3D view (loading...)
[Scheme 3D1]
Chemical scheme
[Scheme 1]

Structure description

In a project on heterocarbazoles (Letessier et al., 2012View full citation, 2013View full citation; Letessier & Detert, 2012View full citation), the title compound, C26H23NO5S (I), was prepared as substrate for a study on rhodium-catalyzed 2 + 2 + 2 cyclo­additions of alkynylynamides to carbolines (Nissen & Detert, 2011View full citation) and indolo­thio­pyranes (Dassonneville et al., 2023aView full citation,bView full citation). This compound is a key inter­mediate in the synthesis of isoperlolyrine (Dassonneville et al., 2011View full citation).

The crystal structure of (I) shows (Fig. 1[link]) that two near planar segments are connected to the N-ethynylaniline unit. The furan ring (C9–C12/O13) and the tolyl ring (C27–C32) include an angle of 9.01 (5)°; the distance between the centroids of these rings is 4.0830 (5) Å with a slippage of 2.105 Å. The alkynyl­furan­carb­oxy­lic ester unit (C7–C12/O13/C14/O15) is essentially planar with a maximum deviation of 0.1111 (8) Å at C1. The dihedral angle between the furan (C9–C12/O13) and aniline ring (C1–C6) is 33.53 (5) ° and the alkyne units N21/C22/C23 and C1/C7/C8/C9 subtend an angle of 26 (4)°. In the crystal, two mol­ecules fill the triclinic unit cell and neighboring mol­ecules are connected via van der Waals inter­actions and a center of inversion (Fig. 2[link]).

[Figure 1]
Figure 1
The mol­ecular structure of (I) with displacement ellipsoids drawn at the 50% probability level.
[Figure 2]
Figure 2
Part of the packing diagram viewed along the b-axis direction. Hydrogen atoms omitted for clarity.

Synthesis and crystallization

Synthetic details are given in the literature (Dassonneville et al., 2011View full citation). Assignment of signals is based on two-dimensional NMR, notation follows IUPAC nomenclature. The compound was obtained as white solid, m.p.= 384–385 K. 1H NMR (400 MHz, CDCl3, 298 K):7.69 (d, 3JH,H = 8.2 Hz, 2H, 2-H, 6-H Ts), 7.49 (d, 3JH,H = 7.0 Hz, 1H, 3-H), 7.43 (m, 3H, 4-H, 5-H, 6-H), 7.21 (d, 3JH,H = 8.2 Hz, 2H, 3-H, 5-H Ts), 7.04 (d, 3JH,H = 3.5 Hz, 1H, 4-H Fu), 6.53 (d, 3JH,H = 3.5 Hz, 1H, 3-H Fu), 2.90 (s, 1H, 8-H), 2.31 (s, 3H, CH3 Ts), 1.60 (s, 9H, tBu). 13C NMR (CDCl3): 157.2 (Cq, COOtBu), 145.9 (Cq, C-5 Fu), 145.1 (Cq, C-4 T s), 139.2 (Cq, C-1), 138.3 (Cq, C-2 Fu), 133.9 (Cq, C-1 T s), 133.3 (CH, C-3), 130.1 (CH, C-4), 130.0 (CH, C-6), 129.7 (CH, C-3, C-5 T s), 129.2 (CH, C-5), 128.3 (CH, C-2, C-6 T s), 121.2 (Cq, C-2), 117.7 (CH, C-4 Fu), 117.2 (CH, C-3 Fu), 90.0 (Cq Ph—CC—Fu), 84.4 (Cq, Ph—CC—Fu), 82.3 (Cq, C(CH3)3), 75.4 (Cq, N—CC—H), 59.3 (CH, N—CC—H), 28.2 (CH3, tBu), 21.5 (CH3 Ts). IR (neat): 3289, 2988, 2129, 1722, 1516, 1375, 1307, 1173, 1137, 1010, 766 cm−1. FD–MS: m/z (%) = 461.0 (100) [M]+. C26H23NO5S (461.13) calculated C 67.66, H 5.02, N 3.03, S 6.95; found C 67.43, H 4.93, N 3.01, S 6.67.

Refinement

Crystal data, data collection and structure refinement details are summarized in Table 1[link].

Table 1
Experimental details

Crystal data
Chemical formula C26H23NO5S
Mr 461.51
Crystal system, space group Triclinic, PMathematical equation
Temperature (K) 120
a, b, c (Å) 7.7527 (3), 12.6007 (5), 13.7529 (5)
α, β, γ (°) 66.199 (3), 76.607 (3), 80.350 (3)
V3) 1191.66 (8)
Z 2
Radiation type Mo Kα
μ (mm−1) 0.17
Crystal size (mm) 0.51 × 0.45 × 0.37
 
Data collection
Diffractometer Stoe Stadivsri
Absorption correction Integration
Tmin, Tmax 0.899, 0.955
No. of measured, independent and observed [I > 2σ(I)] reflections 21571, 8903, 7763
Rint 0.018
(sin θ/λ)max−1) 0.804
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.037, 0.114, 1.06
No. of reflections 8903
No. of parameters 302
H-atom treatment H-atom parameters constrained
Δρmax, Δρmin (e Å−3) 0.43, −0.50
Computer programs: X-AREA WinXpose, Recipe and Integrate (Stoe & Cie, 2020View full citation), SHELXT2014 (Sheldrick, 2015aView full citation), SHELXL2019/2 (Sheldrick, 2015bView full citation) and PLATON (Spek, 2009View full citation).

Structural data


Computing details top

tert-Butyl 5-{2-[2-(N-ethynyl-4-methylbenzenesulfonamido)phenyl]ethynyl}furan-2-carboxylate top
Crystal data top
C26H23NO5SF(000) = 484
Mr = 461.51Dx = 1.286 Mg m3
Triclinic, P1Melting point: 384 K
a = 7.7527 (3) ÅMo Kα radiation, λ = 0.71073 Å
b = 12.6007 (5) ÅCell parameters from 33755 reflections
c = 13.7529 (5) Åθ = 2.7–34.8°
α = 66.199 (3)°µ = 0.17 mm1
β = 76.607 (3)°T = 120 K
γ = 80.350 (3)°Block, colorless
V = 1191.66 (8) Å30.51 × 0.45 × 0.37 mm
Z = 2
Data collection top
Stoe Stadivsri
diffractometer
8903 independent reflections
Radiation source: Axo Mo7763 reflections with I > 2σ(I)
Detector resolution: 13.33 pixels mm-1Rint = 0.018
rotation method, ω scansθmax = 34.8°, θmin = 2.7°
Absorption correction: integrationh = 1212
Tmin = 0.899, Tmax = 0.955k = 1818
21571 measured reflectionsl = 1921
Refinement top
Refinement on F2Primary atom site location: dual
Least-squares matrix: fullHydrogen site location: inferred from neighbouring sites
R[F2 > 2σ(F2)] = 0.037H-atom parameters constrained
wR(F2) = 0.114 w = 1/[σ2(Fo2) + (0.0733P)2 + 0.1217P]
where P = (Fo2 + 2Fc2)/3
S = 1.06(Δ/σ)max = 0.001
8903 reflectionsΔρmax = 0.43 e Å3
302 parametersΔρmin = 0.50 e Å3
0 restraints
Special details top

Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds involving l.s. planes.

Refinement. Hydrogen atoms attached to carbon atoms were placed at calculated positions and were refined in the riding-model approximation with C—H = 0.99 Å, and with Uiso(H) = 1.2 Ueq(C).

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
C10.65107 (10)0.32278 (7)0.19892 (6)0.01866 (13)
C20.55638 (11)0.26355 (7)0.23392 (7)0.02295 (14)
H20.4921550.2000480.1824340.028*
C30.55562 (12)0.29685 (8)0.34311 (7)0.02667 (16)
H30.4908610.2563100.3660820.032*
C40.64960 (12)0.38951 (8)0.41885 (7)0.02534 (15)
H40.6505380.4112450.4936260.030*
C50.74236 (11)0.45066 (7)0.38581 (6)0.02202 (14)
H50.8052530.5145930.4377020.026*
C60.74237 (10)0.41758 (6)0.27644 (6)0.01835 (13)
C70.65771 (10)0.28461 (7)0.08693 (6)0.02025 (14)
C80.67369 (11)0.25010 (7)0.00618 (6)0.02139 (14)
C90.70200 (11)0.21554 (7)0.11283 (6)0.02034 (13)
C100.73297 (12)0.27686 (7)0.16843 (6)0.02385 (15)
H100.7350450.3588620.1434470.029*
C110.76142 (11)0.19355 (7)0.27098 (6)0.02309 (15)
H110.7873040.2086160.3282160.028*
C120.74427 (11)0.08751 (7)0.27112 (6)0.02079 (14)
O130.70783 (8)0.09883 (5)0.17451 (4)0.02131 (11)
C140.75674 (12)0.03284 (7)0.35009 (6)0.02299 (15)
O150.74907 (12)0.11598 (6)0.32893 (5)0.03557 (17)
O160.77637 (9)0.03494 (5)0.44483 (5)0.02390 (12)
C170.79837 (13)0.14879 (7)0.53537 (6)0.02594 (16)
C180.64352 (15)0.22090 (9)0.56027 (7)0.03345 (19)
H18A0.5320910.1707210.5577200.050*
H18B0.6390440.2823600.6325350.050*
H18C0.6595500.2561500.5066320.050*
C190.97710 (15)0.21039 (10)0.50736 (9)0.0397 (2)
H19A0.9768670.2305210.4456120.060*
H19B0.9983540.2815280.5696350.060*
H19C1.0714580.1588750.4887660.060*
C200.79498 (18)0.11173 (10)0.62842 (8)0.0389 (2)
H20A0.8937000.0636710.6104060.058*
H20B0.8070970.1809780.6940090.058*
H20C0.6819620.0667030.6407120.058*
N210.83817 (9)0.48321 (6)0.24387 (5)0.02043 (12)
C220.75138 (12)0.52801 (7)0.16914 (7)0.02340 (15)
C230.67232 (13)0.56911 (8)0.10549 (8)0.02971 (17)
H230.6093210.6018630.0547620.036*
S241.06219 (3)0.45912 (2)0.25700 (2)0.02193 (6)
O251.11953 (9)0.43671 (7)0.35390 (5)0.02992 (14)
O261.11886 (10)0.55567 (6)0.24649 (6)0.03253 (15)
C271.10259 (10)0.33213 (7)0.14669 (6)0.01959 (13)
C281.12413 (12)0.33950 (7)0.05187 (7)0.02338 (15)
H281.1154120.4129410.0461600.028*
C291.15851 (12)0.23764 (8)0.03392 (7)0.02635 (16)
H291.1742120.2416900.0987960.032*
C301.17050 (11)0.12906 (7)0.02674 (7)0.02526 (15)
C311.14652 (12)0.12424 (7)0.06865 (7)0.02553 (16)
H311.1539740.0507720.0741460.031*
C321.11193 (11)0.22493 (7)0.15577 (7)0.02261 (14)
H321.0949290.2209200.2203940.027*
C331.21211 (17)0.01939 (9)0.12007 (9)0.0400 (2)
H33A1.2145810.0482300.1014440.060*
H33B1.1204030.0131940.1841140.060*
H33C1.3283950.0219030.1353300.060*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
C10.0189 (3)0.0192 (3)0.0153 (3)0.0005 (2)0.0048 (2)0.0035 (2)
C20.0215 (3)0.0238 (3)0.0229 (3)0.0040 (3)0.0069 (3)0.0058 (3)
C30.0273 (4)0.0314 (4)0.0254 (4)0.0037 (3)0.0107 (3)0.0112 (3)
C40.0289 (4)0.0305 (4)0.0181 (3)0.0009 (3)0.0091 (3)0.0087 (3)
C50.0266 (3)0.0227 (3)0.0144 (3)0.0018 (3)0.0060 (3)0.0036 (3)
C60.0209 (3)0.0183 (3)0.0150 (3)0.0006 (2)0.0057 (2)0.0046 (2)
C70.0207 (3)0.0197 (3)0.0173 (3)0.0014 (2)0.0038 (2)0.0038 (3)
C80.0230 (3)0.0207 (3)0.0172 (3)0.0013 (3)0.0039 (2)0.0039 (3)
C90.0242 (3)0.0189 (3)0.0154 (3)0.0010 (2)0.0046 (2)0.0037 (2)
C100.0316 (4)0.0187 (3)0.0205 (3)0.0027 (3)0.0079 (3)0.0048 (3)
C110.0295 (4)0.0222 (3)0.0186 (3)0.0017 (3)0.0079 (3)0.0070 (3)
C120.0277 (4)0.0197 (3)0.0138 (3)0.0003 (3)0.0060 (2)0.0050 (2)
O130.0311 (3)0.0183 (2)0.0133 (2)0.0011 (2)0.0060 (2)0.00406 (19)
C140.0324 (4)0.0202 (3)0.0144 (3)0.0005 (3)0.0053 (3)0.0049 (3)
O150.0664 (5)0.0211 (3)0.0198 (3)0.0015 (3)0.0098 (3)0.0080 (2)
O160.0361 (3)0.0198 (3)0.0150 (2)0.0003 (2)0.0090 (2)0.0043 (2)
C170.0354 (4)0.0220 (4)0.0158 (3)0.0018 (3)0.0086 (3)0.0006 (3)
C180.0424 (5)0.0314 (4)0.0222 (4)0.0104 (4)0.0058 (3)0.0028 (3)
C190.0388 (5)0.0319 (5)0.0348 (5)0.0071 (4)0.0106 (4)0.0005 (4)
C200.0603 (7)0.0381 (5)0.0194 (4)0.0089 (5)0.0157 (4)0.0055 (4)
N210.0248 (3)0.0193 (3)0.0175 (3)0.0024 (2)0.0063 (2)0.0058 (2)
C220.0302 (4)0.0184 (3)0.0218 (3)0.0002 (3)0.0102 (3)0.0057 (3)
C230.0339 (4)0.0285 (4)0.0319 (4)0.0017 (3)0.0097 (3)0.0164 (4)
S240.02414 (10)0.02249 (10)0.01708 (9)0.00750 (7)0.00447 (6)0.00286 (7)
O250.0271 (3)0.0417 (4)0.0170 (3)0.0068 (3)0.0005 (2)0.0075 (2)
O260.0395 (4)0.0240 (3)0.0332 (3)0.0138 (3)0.0139 (3)0.0016 (3)
C270.0197 (3)0.0208 (3)0.0180 (3)0.0032 (2)0.0035 (2)0.0064 (3)
C280.0304 (4)0.0210 (3)0.0210 (3)0.0020 (3)0.0091 (3)0.0079 (3)
C290.0337 (4)0.0246 (4)0.0213 (3)0.0021 (3)0.0108 (3)0.0063 (3)
C300.0245 (4)0.0215 (3)0.0262 (4)0.0010 (3)0.0065 (3)0.0048 (3)
C310.0259 (4)0.0209 (3)0.0303 (4)0.0010 (3)0.0038 (3)0.0113 (3)
C320.0229 (3)0.0246 (4)0.0224 (3)0.0028 (3)0.0028 (3)0.0115 (3)
C330.0497 (6)0.0256 (4)0.0370 (5)0.0020 (4)0.0172 (4)0.0011 (4)
Geometric parameters (Å, º) top
C1—C21.4018 (11)C18—H18B0.9800
C1—C61.4037 (10)C18—H18C0.9800
C1—C71.4272 (10)C19—H19A0.9800
C2—C31.3878 (11)C19—H19B0.9800
C2—H20.9500C19—H19C0.9800
C3—C41.3896 (13)C20—H20A0.9800
C3—H30.9500C20—H20B0.9800
C4—C51.3918 (11)C20—H20C0.9800
C4—H40.9500N21—C221.3594 (11)
C5—C61.3894 (10)N21—S241.6921 (7)
C5—H50.9500C22—C231.1922 (12)
C6—N211.4475 (10)C23—H230.9500
C7—C81.2043 (11)S24—O251.4283 (7)
C8—C91.4109 (10)S24—O261.4299 (7)
C9—C101.3651 (11)S24—C271.7472 (8)
C9—O131.3685 (9)C27—C281.3931 (10)
C10—C111.4182 (11)C27—C321.3946 (11)
C10—H100.9500C28—C291.3854 (11)
C11—C121.3639 (11)C28—H280.9500
C11—H110.9500C29—C301.3974 (12)
C12—O131.3685 (9)C29—H290.9500
C12—C141.4693 (11)C30—C311.3930 (12)
C14—O151.2086 (10)C30—C331.5073 (13)
C14—O161.3357 (9)C31—C321.3875 (12)
O16—C171.4873 (10)C31—H310.9500
C17—C191.5180 (14)C32—H320.9500
C17—C181.5193 (14)C33—H33A0.9800
C17—C201.5228 (13)C33—H33B0.9800
C18—H18A0.9800C33—H33C0.9800
C2—C1—C6118.61 (7)H18B—C18—H18C109.5
C2—C1—C7120.18 (7)C17—C19—H19A109.5
C6—C1—C7121.19 (7)C17—C19—H19B109.5
C3—C2—C1120.59 (8)H19A—C19—H19B109.5
C3—C2—H2119.7C17—C19—H19C109.5
C1—C2—H2119.7H19A—C19—H19C109.5
C2—C3—C4119.99 (8)H19B—C19—H19C109.5
C2—C3—H3120.0C17—C20—H20A109.5
C4—C3—H3120.0C17—C20—H20B109.5
C3—C4—C5120.40 (7)H20A—C20—H20B109.5
C3—C4—H4119.8C17—C20—H20C109.5
C5—C4—H4119.8H20A—C20—H20C109.5
C6—C5—C4119.56 (7)H20B—C20—H20C109.5
C6—C5—H5120.2C22—N21—C6119.08 (7)
C4—C5—H5120.2C22—N21—S24117.23 (6)
C5—C6—C1120.84 (7)C6—N21—S24119.20 (5)
C5—C6—N21118.60 (7)C23—C22—N21178.24 (9)
C1—C6—N21120.56 (6)C22—C23—H23180.0
C8—C7—C1176.13 (8)O25—S24—O26121.34 (4)
C7—C8—C9175.78 (9)O25—S24—N21104.93 (4)
C10—C9—O13110.83 (7)O26—S24—N21105.16 (4)
C10—C9—C8132.13 (7)O25—S24—C27109.12 (4)
O13—C9—C8116.98 (7)O26—S24—C27109.34 (4)
C9—C10—C11106.20 (7)N21—S24—C27105.74 (4)
C9—C10—H10126.9C28—C27—C32121.37 (7)
C11—C10—H10126.9C28—C27—S24119.82 (6)
C12—C11—C10106.38 (7)C32—C27—S24118.81 (6)
C12—C11—H11126.8C29—C28—C27118.72 (7)
C10—C11—H11126.8C29—C28—H28120.6
C11—C12—O13110.77 (7)C27—C28—H28120.6
C11—C12—C14134.61 (7)C28—C29—C30121.17 (8)
O13—C12—C14114.62 (7)C28—C29—H29119.4
C9—O13—C12105.83 (6)C30—C29—H29119.4
O15—C14—O16126.62 (7)C31—C30—C29118.88 (8)
O15—C14—C12122.82 (7)C31—C30—C33120.74 (8)
O16—C14—C12110.56 (7)C29—C30—C33120.37 (8)
C14—O16—C17119.45 (6)C32—C31—C30121.11 (8)
O16—C17—C19108.92 (7)C32—C31—H31119.4
O16—C17—C18110.75 (7)C30—C31—H31119.4
C19—C17—C18112.81 (9)C31—C32—C27118.75 (7)
O16—C17—C20102.12 (7)C31—C32—H32120.6
C19—C17—C20111.31 (9)C27—C32—H32120.6
C18—C17—C20110.42 (8)C30—C33—H33A109.5
C17—C18—H18A109.5C30—C33—H33B109.5
C17—C18—H18B109.5H33A—C33—H33B109.5
H18A—C18—H18B109.5C30—C33—H33C109.5
C17—C18—H18C109.5H33A—C33—H33C109.5
H18A—C18—H18C109.5H33B—C33—H33C109.5
C6—C1—C2—C31.09 (12)C14—O16—C17—C20173.94 (8)
C7—C1—C2—C3177.15 (8)C5—C6—N21—C22126.08 (8)
C1—C2—C3—C40.14 (13)C1—C6—N21—C2253.72 (10)
C2—C3—C4—C51.10 (14)C5—C6—N21—S2478.34 (8)
C3—C4—C5—C60.80 (13)C1—C6—N21—S24101.86 (8)
C4—C5—C6—C10.45 (12)C22—N21—S24—O25168.07 (6)
C4—C5—C6—N21179.35 (7)C6—N21—S24—O2535.91 (7)
C2—C1—C6—C51.38 (11)C22—N21—S24—O2639.02 (7)
C7—C1—C6—C5176.84 (7)C6—N21—S24—O26164.96 (6)
C2—C1—C6—N21178.42 (7)C22—N21—S24—C2776.63 (7)
C7—C1—C6—N213.37 (11)C6—N21—S24—C2779.40 (6)
O13—C9—C10—C110.49 (10)O25—S24—C27—C28155.33 (7)
C8—C9—C10—C11176.59 (9)O26—S24—C27—C2820.49 (8)
C9—C10—C11—C120.53 (10)N21—S24—C27—C2892.27 (7)
C10—C11—C12—O130.40 (10)O25—S24—C27—C3224.89 (7)
C10—C11—C12—C14179.88 (9)O26—S24—C27—C32159.73 (7)
C10—C9—O13—C120.25 (9)N21—S24—C27—C3287.51 (7)
C8—C9—O13—C12177.32 (7)C32—C27—C28—C291.12 (13)
C11—C12—O13—C90.11 (9)S24—C27—C28—C29179.11 (7)
C14—C12—O13—C9179.89 (7)C27—C28—C29—C300.42 (14)
C11—C12—C14—O15174.32 (10)C28—C29—C30—C310.25 (14)
O13—C12—C14—O155.40 (13)C28—C29—C30—C33178.61 (9)
C11—C12—C14—O165.91 (14)C29—C30—C31—C320.25 (13)
O13—C12—C14—O16174.38 (7)C33—C30—C31—C32178.62 (9)
O15—C14—O16—C172.46 (14)C30—C31—C32—C270.43 (13)
C12—C14—O16—C17177.77 (7)C28—C27—C32—C311.13 (12)
C14—O16—C17—C1968.25 (10)S24—C27—C32—C31179.10 (6)
C14—O16—C17—C1856.37 (10)
 

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